Wireless Stimulus-on-Device Design for Novel P300 Hybrid Brain-Computer Interface Applications

Improving the independent living ability of people who have suffered spinal cord injuries (SCIs) is essential for their quality of life. Brain-computer interfaces (BCIs) provide promising solutions for people with high-level SCIs. This paper proposes a novel and practical P300-based hybrid stimulus-...

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Published inComputational intelligence and neuroscience Vol. 2018; no. 2018; pp. 1 - 13
Main Authors Chen, Ping-Nan, Chou, Hung-Chyun, Chen, Hung-Hsuan, Kuo, Chung-Hsien, Kuo, Yu-Cheng
Format Journal Article
LanguageEnglish
Published Cairo, Egypt Hindawi Publishing Corporation 01.01.2018
Hindawi
John Wiley & Sons, Inc
Subjects
Online AccessGet full text
ISSN1687-5265
1687-5273
1687-5273
DOI10.1155/2018/2301804

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Abstract Improving the independent living ability of people who have suffered spinal cord injuries (SCIs) is essential for their quality of life. Brain-computer interfaces (BCIs) provide promising solutions for people with high-level SCIs. This paper proposes a novel and practical P300-based hybrid stimulus-on-device (SoD) BCI architecture for wireless networking applications. Instead of a stimulus-on-panel architecture (SoP), the proposed SoD architecture provides an intuitive control scheme. However, because P300 recognitions rely on the synchronization between stimuli and response potentials, the variation of latency between target stimuli and elicited P300 is a concern when applying a P300-based BCI to wireless applications. In addition, the subject-dependent variation of elicited P300 affects the performance of the BCI. Thus, an adaptive model that determines an appropriate interval for P300 feature extraction was proposed in this paper. Hence, this paper employed the artificial bee colony- (ABC-) based interval type-2 fuzzy logic system (IT2FLS) to deal with the variation of latency between target stimuli and elicited P300 so that the proposed P300-based SoD approach would be feasible. Furthermore, the target and nontarget stimuli were identified in terms of a support vector machine (SVM) classifier. Experimental results showed that, from five subjects, the performance of classification and information transfer rate were improved after calibrations (86.00% and 24.2 bits/ min before calibrations; 90.25% and 27.9 bits/ min after calibrations).
AbstractList Improving the independent living ability of people who have suffered spinal cord injuries (SCIs) is essential for their quality of life. Brain-computer interfaces (BCIs) provide promising solutions for people with high-level SCIs. This paper proposes a novel and practical P300-based hybrid stimulus-on-device (SoD) BCI architecture for wireless networking applications. Instead of a stimulus-on-panel architecture (SoP), the proposed SoD architecture provides an intuitive control scheme. However, because P300 recognitions rely on the synchronization between stimuli and response potentials, the variation of latency between target stimuli and elicited P300 is a concern when applying a P300-based BCI to wireless applications. In addition, the subject-dependent variation of elicited P300 affects the performance of the BCI. Thus, an adaptive model that determines an appropriate interval for P300 feature extraction was proposed in this paper. Hence, this paper employed the artificial bee colony- (ABC-) based interval type-2 fuzzy logic system (IT2FLS) to deal with the variation of latency between target stimuli and elicited P300 so that the proposed P300-based SoD approach would be feasible. Furthermore, the target and nontarget stimuli were identified in terms of a support vector machine (SVM) classifier. Experimental results showed that, from five subjects, the performance of classification and information transfer rate were improved after calibrations (86.00% and 24.2 bits/ min before calibrations; 90.25% and 27.9 bits/ min after calibrations).
Improving the independent living ability of people who have suffered spinal cord injuries (SCIs) is essential for their quality of life. Brain-computer interfaces (BCIs) provide promising solutions for people with high-level SCIs. This paper proposes a novel and practical P300-based hybrid stimulus-on-device (SoD) BCI architecture for wireless networking applications. Instead of a stimulus-on-panel architecture (SoP), the proposed SoD architecture provides an intuitive control scheme. However, because P300 recognitions rely on the synchronization between stimuli and response potentials, the variation of latency between target stimuli and elicited P300 is a concern when applying a P300-based BCI to wireless applications. In addition, the subject-dependent variation of elicited P300 affects the performance of the BCI. Thus, an adaptive model that determines an appropriate interval for P300 feature extraction was proposed in this paper. Hence, this paper employed the artificial bee colony- (ABC-) based interval type-2 fuzzy logic system (IT2FLS) to deal with the variation of latency between target stimuli and elicited P300 so that the proposed P300-based SoD approach would be feasible. Furthermore, the target and nontarget stimuli were identified in terms of a support vector machine (SVM) classifier. Experimental results showed that, from five subjects, the performance of classification and information transfer rate were improved after calibrations (86.00% and 24.2 bits/ min before calibrations; 90.25% and 27.9 bits/ min after calibrations).Improving the independent living ability of people who have suffered spinal cord injuries (SCIs) is essential for their quality of life. Brain-computer interfaces (BCIs) provide promising solutions for people with high-level SCIs. This paper proposes a novel and practical P300-based hybrid stimulus-on-device (SoD) BCI architecture for wireless networking applications. Instead of a stimulus-on-panel architecture (SoP), the proposed SoD architecture provides an intuitive control scheme. However, because P300 recognitions rely on the synchronization between stimuli and response potentials, the variation of latency between target stimuli and elicited P300 is a concern when applying a P300-based BCI to wireless applications. In addition, the subject-dependent variation of elicited P300 affects the performance of the BCI. Thus, an adaptive model that determines an appropriate interval for P300 feature extraction was proposed in this paper. Hence, this paper employed the artificial bee colony- (ABC-) based interval type-2 fuzzy logic system (IT2FLS) to deal with the variation of latency between target stimuli and elicited P300 so that the proposed P300-based SoD approach would be feasible. Furthermore, the target and nontarget stimuli were identified in terms of a support vector machine (SVM) classifier. Experimental results showed that, from five subjects, the performance of classification and information transfer rate were improved after calibrations (86.00% and 24.2 bits/ min before calibrations; 90.25% and 27.9 bits/ min after calibrations).
Audience Academic
Author Kuo, Chung-Hsien
Chen, Ping-Nan
Chou, Hung-Chyun
Chen, Hung-Hsuan
Kuo, Yu-Cheng
AuthorAffiliation 2 Center for Cyber-Physical System Innovation, National Taiwan University of Science and Technology, Taipei, Taiwan
3 Department of Biomedical Engineering, National Defense Medical Center, Taipei 114, Taiwan
1 Department of Electrical Engineering, National Taiwan University of Science and Technology, Taipei, Taiwan
AuthorAffiliation_xml – name: 1 Department of Electrical Engineering, National Taiwan University of Science and Technology, Taipei, Taiwan
– name: 3 Department of Biomedical Engineering, National Defense Medical Center, Taipei 114, Taiwan
– name: 2 Center for Cyber-Physical System Innovation, National Taiwan University of Science and Technology, Taipei, Taiwan
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CitedBy_id crossref_primary_10_1051_matecconf_201925203010
crossref_primary_10_3390_s21144754
crossref_primary_10_4015_S1016237220500039
crossref_primary_10_1016_j_bspc_2020_101884
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ContentType Journal Article
Copyright Copyright © 2018 Chung-Hsien Kuo et al.
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Copyright © 2018 Chung-Hsien Kuo et al. 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
Copyright © 2018 Chung-Hsien Kuo et al. 2018
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– notice: COPYRIGHT 2018 John Wiley & Sons, Inc.
– notice: Copyright © 2018 Chung-Hsien Kuo et al. 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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Snippet Improving the independent living ability of people who have suffered spinal cord injuries (SCIs) is essential for their quality of life. Brain-computer...
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SubjectTerms Algorithms
Animals
Bees
Biomedical engineering
Brain
Brain - physiology
Brain injury
Brain research
Brain-Computer Interfaces
Calibration
Care and treatment
Computer applications
Design and construction
Discriminant analysis
Electroencephalography - instrumentation
Engineering
Equipment Design
Event-related potentials
Event-Related Potentials, P300
Evoked Potentials, Visual
Feature extraction
Female
Fuzzy Logic
Fuzzy systems
Head injuries
Human-computer interface
Human-machine systems
Humans
Implants
Implants, Artificial
Information transfer
Interfaces
Kalman filters
Latency
Male
Models, Biological
Neural networks
Patient outcomes
Pattern Recognition, Automated - methods
People with disabilities
Performance evaluation
Prosthesis
Quality of life
Signal Processing, Computer-Assisted
Spinal cord injuries
Stimuli
Support Vector Machine
Support vector machines
Swarm intelligence
Synchronism
Synchronization
User training
Variation
Visual Perception - physiology
Wireless communications
Wireless networks
Wireless Technology
Young Adult
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Title Wireless Stimulus-on-Device Design for Novel P300 Hybrid Brain-Computer Interface Applications
URI https://search.emarefa.net/detail/BIM-1130635
https://dx.doi.org/10.1155/2018/2301804
https://www.ncbi.nlm.nih.gov/pubmed/30111993
https://www.proquest.com/docview/2078444605
https://www.proquest.com/docview/2089290974
https://pubmed.ncbi.nlm.nih.gov/PMC6077535
Volume 2018
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