Publications

Detailed Information

Dry-contact EEG Electrodes and Instant Donning Multichannel Headsets for Brain-Computer Interface : 뇌-컴퓨터 인터페이스를 위한 건식 뇌파전극 및 신속착용 다채널 헤드셋

DC Field Value Language
dc.contributor.advisor박광석-
dc.contributor.author이정수-
dc.date.accessioned2017-07-13T08:50:50Z-
dc.date.available2017-07-13T08:50:50Z-
dc.date.issued2016-02-
dc.identifier.other000000132167-
dc.identifier.urihttps://hdl.handle.net/10371/119891-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 공과대학 협동과정 바이오엔지니어링전공, 2016. 2. 박광석.-
dc.description.abstractIntroduction: There are various applications that use electroencephalogram (EEG) signals, such as brain-computer interface (BCI), clinical diagnosis, polysomnography, and authentication. These applications require multichannel EEG measurement. However, as the process for the preparation of the multichannel EEG measurement is time-consuming and laborious, its implementation has been limited to hospital and laboratory environments. Although there have been diverse approaches introduced to overcome these limitations, it is not yet feasible to measure EEG signals in daily life. In this dissertation, new designs of dry-contact EEG electrodes and multichannel EEG headsets are introduced that overcome the limitations of existing dry-contact EEG electrodes, simplify the procedure, and reduce the time for the preparation of multichannel EEG measurement without assistance.

Methods: The proposed EEG electrodes have a reverse-curve-arch shape and were fabricated with sterling silver using a 3D printer. This unique structure was designed to reach the surface of the scalp by passing through the layer of hair, and to maximize the contact area between the skin and electrode. Therefore, its design could reduce discomfort and pain when being worn. In addition, instant-donning multichannel EEG headsets with electrodes were introduced. These headsets were designed to let the electrodes reach the surface of the scalp while being worn. It takes approximately ten seconds to put the headsets on, including the ground and reference electrodes, without any preparation or assistance. Several experiments were conducted to validate the proposed electrodes and headsets, and they were applied to the brain-computer interface system.

Results: The skin-electrode impedance of the proposed electrode was relatively less than existing spiky electrode and the correlation between signals using Ag/AgCl and proposed electrode are higher than the spiky electrode. As instant-donning headsets, it was proven that reliable EEG signals up to eight channels were acquired just after putting it on without any assistant. SSVEP-based BCI system with the proposed system showed the average accuracy of 95.70% and ITR of 20.34b/m. Additionally, ASSR-based BCI system with the system showed the average accuracy of 76%.

Conclusions: The electrodes and headsets introduced in this study overcome the drawbacks of the existing dry-contact electrodes and multichannel headsets. It was proven that reliable EEG signals were obtained using the proposed system. This study shows the feasibility of the instant-donning headsets for various EEG-based applications, including BCI. The proposed system makes it possible to measure EEG signals in daily life without assistance, and contributes to the development of various EEG applications.
-
dc.description.tableofcontentsCHAPTER 1. Introduction 1
1.1. Brain-computer interface 3
1.2. Electroencephalography 7
1.3. EEG electrodes 10
1.3.1. Ag/AgCl electrodes 10
1.3.2. Dry-contact electrodes 11
1.3.3. Capacitive-coupled electrodes 13
1.4. Multichannel EEG measurement 16
1.5. Purpose of the study 17

CHAPTER 2. Reverse-curve-arch-shaped dry-contact EEG electrode 19
2.1. Materials and Methods 24
2.1.1. Electrode 24
2.1.2. Comparison experiment 30
2.1.3. Animal experiment 32
2.1.4. Skin-electrode impedance 34
2.1.5. Maximum skin-electrode contact area 35
2.1.6. Discomfort and pain 36
2.2. Results 38
2.2.1. Comparison experiment 38
2.2.2. Animal experiment 45
2.2.3. Skin-electrode impedance 48
2.2.4. Maximum skin-electrode contact area 51
2.2.5. Discomfort and pain 53
2.3. Discussion 54

CHAPTER 3. Instant-donning multichannel headsets 56
3.1. Materials and Methods 60
3.1.1. Electrodes 60
3.1.2. Headsets 63
3.1.3. Instant-donning experiments 74
3.1.4. Measurement experiments 77
3.1.5. Alpha-rhythm-based BCI experiment 78
3.2. Results 79
3.2.1. Instant-donning experiments 79
3.2.2. Measurement experiments 83
3.2.3. Alpha-rhythm-based BCI experiment 89
3.3. Discussion 92

CHAPTER 4.Brain-computer interface applications 94
4.1. Materials and Methods 98
4.1.1. SSVEP-based BCI speller 98
4.1.2. ASSR-based BCI paradigm 103
4.2.Results 105
4.2.1.SSVEP-based BCI speller 105
4.2.2.ASSR-based BCI paradigm 109
4.3. Discussion 112

CHAPTER 5. Conclusions 114

References 118

Abstract in Korean 130
-
dc.formatapplication/pdf-
dc.format.extent5493670 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoko-
dc.publisher서울대학교 대학원-
dc.subjectBrain-computer interface-
dc.subjectEEG-
dc.subjectDry-contact electrode-
dc.subjectMultichannel EEG measurement-
dc.subject.ddc660-
dc.titleDry-contact EEG Electrodes and Instant Donning Multichannel Headsets for Brain-Computer Interface-
dc.title.alternative뇌-컴퓨터 인터페이스를 위한 건식 뇌파전극 및 신속착용 다채널 헤드셋-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pages133-
dc.contributor.affiliation공과대학 협동과정 바이오엔지니어링전공-
dc.date.awarded2016-02-
Appears in Collections:
Files in This Item:

Altmetrics

Item View & Download Count

  • mendeley

Items in S-Space are protected by copyright, with all rights reserved, unless otherwise indicated.

Share