Custom-Fitted In- and Around-the-Ear Sensors for Unobtrusive and On-the-Go EEG Acquisitions: Development and Validation
暂无分享,去创建一个
Jérémie Voix | Aidin Delnavaz | Gabrielle Cretot-Richert | Olivier Valentin | Guilhem Viallet | Mikaël Ducharme | Hami Monsarat-Chanon | J. Voix | O. Valentin | A. Delnavaz | Guilhem Viallet | G. Crétot-Richert | Mikaël Ducharme | Hami Monsarat-Chanon | Aidin Delnavaz
[1] James J. S. Norton,et al. Soft, curved electrode systems capable of integration on the auricle as a persistent brain–computer interface , 2015, Proceedings of the National Academy of Sciences.
[2] Guangli Li,et al. Review of semi-dry electrodes for EEG recording , 2020, Journal of neural engineering.
[3] D. Stapells,et al. Comparison of multiple auditory steady-state responses (80 versus 40 Hz) and slow cortical potentials for threshold estimation in hearing-impaired adults , 2005, International journal of audiology.
[4] T W Picton,et al. Multiple auditory steady-state responses (MASTER): stimulus and recording parameters. , 1998, Audiology : official organ of the International Society of Audiology.
[5] Kaare B. Mikkelsen,et al. EEG Recorded from the Ear: Characterizing the Ear-EEG Method , 2015, Front. Neurosci..
[6] Martin G Bleichner,et al. Exploring miniaturized EEG electrodes for brain-computer interfaces. An EEG you do not see? , 2015, Physiological reports.
[7] J. Polich,et al. Comparison of P300 from passive and active tasks for auditory and visual stimuli. , 1999, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[8] Brendan Z. Allison,et al. Brain-Computer Interfaces , 2010 .
[9] T. Picton,et al. Human auditory steady-state responses: Respuestas auditivas de estado estable en humanos , 2003, International journal of audiology.
[10] Daniel Sánchez Morillo,et al. Dry EEG Electrodes , 2014, Sensors.
[11] S. Debener,et al. Concealed, Unobtrusive Ear-Centered EEG Acquisition: cEEGrids for Transparent EEG , 2017, Front. Hum. Neurosci..
[12] Jyh-Yeong Chang,et al. Novel Dry Polymer Foam Electrodes for Long-Term EEG Measurement , 2011, IEEE Transactions on Biomedical Engineering.
[13] Y. Ku,et al. Wearable in-the-ear EEG system for SSVEP-based brain–computer interface , 2018 .
[14] S. Makeig,et al. A 40-Hz auditory potential recorded from the human scalp. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[15] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[16] Charles Sodini,et al. Wireless behind-the-ear EEG recording device with wireless interface to a mobile device (iPhone/iPod touch) , 2014, 2014 36th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[17] Jérémie Voix,et al. Validation and Benchmarking of a Wearable EEG Acquisition Platform for Real-World Applications , 2019, IEEE Transactions on Biomedical Circuits and Systems.
[18] S. Wellek. Testing Statistical Hypotheses of Equivalence and Noninferiority , 2010 .
[19] Arnaud Delorme,et al. EEGLAB: an open source toolbox for analysis of single-trial EEG dynamics including independent component analysis , 2004, Journal of Neuroscience Methods.
[20] Gary Rance,et al. The auditory steady-state response: comparisons with the auditory brainstem response. , 2002, Journal of the American Academy of Audiology.
[21] Rickie R Davis. What do we know about hearing protector comfort? , 2008, Noise & health.
[22] Stefan Debener,et al. Sleep EEG Derived From Behind-the-Ear Electrodes (cEEGrid) Compared to Standard Polysomnography: A Proof of Concept Study , 2018, Front. Hum. Neurosci..
[23] Preben Kidmose,et al. A Study of Evoked Potentials From Ear-EEG , 2013, IEEE Transactions on Biomedical Engineering.
[24] P Vink,et al. Identifying factors of comfort in using hand tools. , 2004, Applied ergonomics.
[25] Joong Hoon Lee,et al. CNT/PDMS-based canal-typed ear electrodes for inconspicuous EEG recording , 2014, Journal of neural engineering.
[26] E. Donchin,et al. Is the P300 component a manifestation of context updating? , 1988, Behavioral and Brain Sciences.
[27] Jérémie Voix,et al. Ear canal dynamic motion as a source of power for in-ear devices , 2013 .
[28] W. Ziegler. The Oxford Handbook Of Event Related Potential Components , 2016 .
[29] Preben Kidmose,et al. In-Ear EEG From Viscoelastic Generic Earpieces: Robust and Unobtrusive 24/7 Monitoring , 2016, IEEE Sensors Journal.
[30] Preben Kidmose,et al. Physiological artifacts in scalp EEG and ear-EEG , 2017, Biomedical engineering online.
[31] Min-Yong Park,et al. An empirical study of comfort afforded by various hearing protection devices: Laboratory versus field results , 1991 .
[32] H. Duan,et al. Printing graphene-carbon nanotube-ionic liquid gel on graphene paper: Towards flexible electrodes with efficient loading of PtAu alloy nanoparticles for electrochemical sensing of blood glucose. , 2016, Analytica chimica acta.
[33] Preben Kidmose,et al. Dry-Contact Electrode Ear-EEG , 2019, IEEE Transactions on Biomedical Engineering.
[34] Tohru Yagi,et al. Conductive rubber electrodes for earphone-based eye gesture input interface , 2014, Personal and Ubiquitous Computing.
[35] H. H. Lemmer. Some empirical results on the two-way analysis of variance by ranks , 1980 .
[36] Stefan Debener,et al. Target Speaker Detection with Concealed EEG Around the Ear , 2016, Front. Neurosci..
[37] Wim Van Paesschen,et al. Comparison between Scalp EEG and Behind-the-Ear EEG for Development of a Wearable Seizure Detection System for Patients with Focal Epilepsy , 2017, Sensors.
[38] S. Debener,et al. Unobtrusive ambulatory EEG using a smartphone and flexible printed electrodes around the ear , 2015, Scientific Reports.
[39] Jennifer Krizman,et al. Auditory biological marker of concussion in children , 2016, Scientific Reports.
[40] Guangli Li,et al. Novel passive ceramic based semi-dry electrodes for recording electroencephalography signals from the hairy scalp , 2016 .
[41] O. Arias-Carrión,et al. EEG-based Brain-Computer Interfaces: An Overview of Basic Concepts and Clinical Applications in Neurorehabilitation , 2010, Reviews in the neurosciences.
[42] Christos Papavassiliou,et al. Hearables: Multimodal physiological in-ear sensing , 2016, Scientific Reports.
[43] Guangli Li,et al. Towards real-life EEG applications: novel superporous hydrogel-based semi-dry EEG electrodes enabling automatically ‘charge–discharge’ electrolyte , 2021, Journal of neural engineering.
[44] Elizabeth Jane M Pearson,et al. Comfort and its measurement – A literature review , 2009, Disability and rehabilitation. Assistive technology.
[45] Sven Hoffmann,et al. The Correction of Eye Blink Artefacts in the EEG: A Comparison of Two Prominent Methods , 2008, PloS one.
[46] Dongchu Chen,et al. Towards emerging EEG applications: a novel printable flexible Ag/AgCl dry electrode array for robust recording of EEG signals at forehead sites , 2020, Journal of neural engineering.
[47] Terence W. Picton,et al. Human Auditory Steady-State Responses to Tones Independently Modulated in Both Frequency and Amplitude , 2001, Ear and hearing.
[48] Preben Kidmose,et al. Auditory evoked responses from Ear-EEG recordings , 2012, 2012 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[49] Farnoush Banaei Kashani,et al. LIBS: a bioelectrical sensing system from human ears for staging whole-night sleep study , 2018, Commun. ACM.