Results for 'human computer interface'

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  1. Using minimal human-computer interfaces for studying the interactive development of social awareness.Tom Froese, Hiroyuki Iizuka & Takashi Ikegami - 2014 - Frontiers in Psychology 5.
  2. Modeling strategic use of human computer interfaces with novel hidden Markov models.Laura J. Mariano, Joshua C. Poore, David M. Krum, Jana L. Schwartz, William D. Coskren & Eric M. Jones - 2015 - Frontiers in Psychology 6.
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  3. People with Disabilities: Human Computer Interface-A User-Orientation Evaluation Framework: Assessing Accessibility Throughout the User Experience Lifecycle.Alexandros Mourouzis, Margherita Antona, Evagelos Boutsakis & Constantine Stephanidis - 2006 - In O. Stock & M. Schaerf, Lecture Notes In Computer Science. Springer Verlag. pp. 421-428.
  4. Ethical aspects of brain computer interfaces: a scoping review.Sasha Burwell, Matthew Sample & Eric Racine - 2017 - BMC Medical Ethics 18 (1):60.
    Brain-Computer Interface is a set of technologies that are of increasing interest to researchers. BCI has been proposed as assistive technology for individuals who are non-communicative or paralyzed, such as those with amyotrophic lateral sclerosis or spinal cord injury. The technology has also been suggested for enhancement and entertainment uses, and there are companies currently marketing BCI devices for those purposes as well as health-related purposes. The unprecedented direct connection created by BCI between human brains and (...) hardware raises various ethical, social, and legal challenges that merit further examination and discussion. To identify and characterize the key issues associated with BCI use, we performed a scoping review of biomedical ethics literature, analyzing the ethics concerns cited across multiple disciplines, including philosophy and medicine. Based on this investigation, we report that BCI research and its potential translation to therapeutic intervention generate significant ethical, legal, and social concerns, notably with regards to personhood, stigma, autonomy, privacy, research ethics, safety, responsibility, and justice. Our review of the literature determined, furthermore, that while these issues have been enumerated extensively, few concrete recommendations have been expressed. We conclude that future research should focus on remedying a lack of practical solutions to the ethical challenges of BCI, alongside the collection of empirical data on the perspectives of the public, BCI users, and BCI researchers. (shrink)
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  5. Brain Computer Interfaces and Communication Disabilities: Ethical, Legal, and Social Aspects of Decoding Speech From the Brain.Jennifer A. Chandler, Kiah I. Van der Loos, Susan Boehnke, Jonas S. Beaudry, Daniel Z. Buchman & Judy Illes - 2022 - Frontiers in Human Neuroscience 16:841035.
    A brain-computer interface technology that can decode the neural signals associated with attempted but unarticulated speech could offer a future efficient means of communication for people with severe motor impairments. Recent demonstrations have validated this approach. Here we assume that it will be possible in future to decode imagined (i.e., attempted but unarticulated) speech in people with severe motor impairments, and we consider the characteristics that could maximize the social utility of a BCI for communication. As a social (...)
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  6.  58
    Veteran and Brain-Computer Interfaces: The Duty to Care.Vincent Guérin - 2025 - American Journal of Bioethics Neuroscience 16 (4):300-308.
    Anticipated by science fiction, the enhanced soldier crystallized in the United States at the dawn of the 21st century within the Pentagon’s scientific agency, the Defense Advanced Research Projects Agency (DARPA). Fueled by the fear of being overtaken by the enemy, and then by its own technology, this agency’s new vision produced a “bifurcation” within anthropotechnics: the modification of humans for war. The soldier is now at the heart of a process of radical innovation, with as yet unknown implications. Emblematic (...)
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  7. Caregivers in implantable brain-computer interface trials: a scoping review.Nicolai Wohns, Natalie Dorfman & Eran Klein - 2024 - Frontiers in Human Neuroscience 18.
    While the ethical significance of caregivers in neurological research has increasingly been recognized, the role of caregivers in brain- computer interface (BCI) research has received relatively less attention. Objectives: This report investigates the extent to which caregivers are mentioned in publications describing implantable BCI (iBCI) research for individuals with motor dysfunction, communication impairment, and blindness. Methods: The scoping review was conducted in June 2024 using the PubMed and Web of Science bibliographic databases. The articles were systematically searched using (...)
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  8. Unseen and unaware: Implications of recent research on failures of visual awareness for human-computer interface design.D. Alexander Varakin, Daniel T. Levin & Roger Fidler - 2004 - Human-Computer Interaction 19 (4):389-422.
     
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  9.  21
    Brain-Computer Interfaces and the Philosophy of Mind and Action.Sebastian Drosselmeier - 2025 - De Gruyter.
    How can brain-computer interfaces enhance our understanding of human agency and mentality? By exploring how these interfaces enable people to perform intentional actions seemingly merely with their thoughts, Drosselmeier delves into three core metaphysical issues in the philosophy of mind: agency, mental causation, and the mind-brain relationship. He argues that brain-computer interfaces provide a unique perspective on these issues, demonstrating both the irreducible higher-level nature of human thought and action, and their continuity with lower-level scientific phenomena. (...)
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  10.  41
    Brain Computer Interfaces.Bouke van Balen, Janna van Grunsven, Mariska Vansteensel & Wijnand IJsselsteijn - 2023 - Wijsgerig Perspectief 63 (1):16-23.
    Amsterdam University Press is a leading publisher of academic books, journals and textbooks in the Humanities and Social Sciences. Our aim is to make current research available to scholars, students, innovators, and the general public. AUP stands for scholarly excellence, global presence, and engagement with the international academic community.
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  11.  81
    Brain computer interface to enhance episodic memory in human participants.John F. Burke, Maxwell B. Merkow, Joshua Jacobs, Michael J. Kahana & Kareem A. Zaghloul - 2014 - Frontiers in Human Neuroscience 8.
  12.  65
    Virtual environments and the future of human-computer interfaces: the electronic frontier in social context.Ralph Schnieder - 1995 - Journal of Intelligent Systems 5 (2-4):111-124.
  13. Doing Things with Thoughts: Brain-Computer Interfaces and Disembodied Agency.Steffen Steinert, Christoph Bublitz, Ralf Jox & Orsolya Friedrich - 2019 - Philosophy and Technology 32 (3):457-482.
    Connecting human minds to various technological devices and applications through brain-computer interfaces (BCIs) affords intriguingly novel ways for humans to engage and interact with the world. Not only do BCIs play an important role in restorative medicine, they are also increasingly used outside of medical or therapeutic contexts (e.g., gaming or mental state monitoring). A striking peculiarity of BCI technology is that the kind of actions it enables seems to differ from paradigmatic human actions, because, effects in (...)
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  14.  6
    “The Brain-Computer Interface is Changing Me”: The Psychological Trajectory of Becoming More-Than-Human with a Brain Implant.Frederic Gilbert, Ian Burkhart & Jake Morrill - 2026 - Neuroethics 19 (2):31.
    This article presents findings from a first-in-human trial involving implantation of a Brain–Computer Interface (BCI) into a quadriplegic patient. It explores the psychological consequences of being integrated into a continuous BCI feedback loop, focusing on how such intimate interaction can enhance users’ sense of empowerment and ownership. At the same time, it reveals complex ethical tensions surrounding the notions of agency and control. Our results suggest that prolonged engagement with BCIs can lead to a profound sense of (...)
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  15.  91
    Ethical Challenges of Human-Machine Symbiosis in Brain-Computer Interfaces: Insights from Chinese Experts.Leqian Wu & Haidan Chen - 2025 - Neuroethics 18 (2):1-16.
    Brain-computer interfaces (BCIs) have long been envisioned as technologies capable of enhancing human capabilities. Recent advancements, particularly the integration of artificial intelligence (AI) have significantly accelerated BCI development, expanding the boundaries of human-machine interaction. However, as this integration deepens, ethical concerns regarding the blurring of boundaries between humans and machines have become increasingly pronounced. This study employed a qualitative approach using semi-structured interviews with 20 Chinese experts in the fields of BCI and neuroscience from June to October (...)
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  16. Extended mind and the brain-computer interface. A pluralist approach to the human-computer integration.Federico Zilio - 2020 - Rivista Internazionale di Filosofia e Psicologia 11 (2):169-189.
    : This paper uses Extended Mind Theory to explore Brain-Computer Interfaces, demonstrating how this conceptual framework provides a wide-ranging interpretation of the potential integration of user and computer. After a preliminary analysis of first- and second-wave EMT arguments and other pragmatic criteria, I present BCI technology, addressing the issues that arise. Can BCIs extend our mental processes and to what degree? What EMT criteria should be applied to this technology? What is the role of the body in the (...)
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  17. Embodied tools, cognitive tools and brain-computer interfaces.Richard Heersmink - 2011 - Neuroethics 6 (1):207-219.
    In this paper I explore systematically the relationship between Brain-Computer Interfaces (BCIs) and their human users from a phenomenological and cognitive perspective. First, I functionally decompose BCI systems and develop a typology in which I categorize BCI applications with similar functional properties into three categories, those with (1) motor, (2) virtual, and (3) linguistic applications. Second, developing and building on the notions of an embodied tool and cognitive tool, I analyze whether these distinct BCI applications can be seen (...)
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  18. Using brain-computer interfaces: a scoping review of studies employing social research methods.Johannes Kögel, Jennifer R. Schmid, Ralf J. Jox & Orsolya Friedrich - 2019 - BMC Medical Ethics 20 (1):18.
    The rapid expansion of research on Brain-Computer Interfaces is not only due to the promising solutions offered for persons with physical impairments. There is also a heightened need for understanding BCIs due to the challenges regarding ethics presented by new technology, especially in its impact on the relationship between man and machine. Here we endeavor to present a scoping review of current studies in the field to gain insight into the complexity of BCI use. By examining studies related to (...)
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  19. Ethical Challenges Associated with the Development and Deployment of Brain Computer Interface Technology.Paul McCullagh, Gaye Lightbody, Jaroslaw Zygierewicz & W. George Kernohan - 2013 - Neuroethics 7 (2):109-122.
    Brain Computer Interface (BCI) technology offers potential for human augmentation in areas ranging from communication to home automation, leisure and gaming. This paper addresses ethical challenges associated with the wider scale deployment of BCI as an assistive technology by documenting issues associated with the development of non-invasive BCI technology. Laboratory testing is normally carried out with volunteers but further testing with subjects, who may be in vulnerable groups is often needed to improve system operation. BCI development is (...)
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  20.  41
    The Future of Brain-Computer Interfaces: Blockchaining Your Way into a Cloudmind.Melanie Swan - 2016 - Journal of Evolution and Technology 26 (2):60-81.
    The aim of this paper is to explore the development of brain-computer interfacing and cloudminds as possible future scenarios. I describe potential applications such as selling unused brain processing cycles and the blockchaining of personality functions. The possibility of ubiquitous brain-computer interfaces that are continuously connected to the Internet suggests interesting options for our future selves. Questions about what it is to be human; the nature of our current existence and interaction with reality; and how things might (...)
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  21.  69
    A Hybrid Brain-Computer Interface Based on Visual Evoked Potential and Pupillary Response.Lu Jiang, Xiaoyang Li, Weihua Pei, Xiaorong Gao & Yijun Wang - 2022 - Frontiers in Human Neuroscience 16.
    Brain-computer interface based on steady-state visual evoked potential has been widely studied due to the high information transfer rate, little user training, and wide subject applicability. However, there are also disadvantages such as visual discomfort and “BCI illiteracy.” To address these problems, this study proposes to use low-frequency stimulations, which can simultaneously elicit visual evoked potential and pupillary response to construct a hybrid BCI system. Classification accuracy was calculated using supervised and unsupervised methods, respectively, and the hybrid accuracy (...)
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  22.  57
    Brain–Computer Interface-Based Adaptive Automation to Prevent Out-Of-The-Loop Phenomenon in Air Traffic Controllers Dealing With Highly Automated Systems.Gianluca Di Flumeri, Francesca De Crescenzio, Bruno Berberian, Oliver Ohneiser, Jan Kramer, Pietro Aricò, Gianluca Borghini, Fabio Babiloni, Sara Bagassi & Sergio Piastra - 2019 - Frontiers in Human Neuroscience 13.
  23. The Unique and Practical Advantages of Applying A Capability Approach to Brain Computer Interface.Andrew Ko & Nancy S. Jecker - 2022 - Philosophy and Technology 35 (4):1-22.
    Intelligent neurotechnology is an emerging field that combines neurotechnologies like brain-computer interface (BCI) with artificial intelligence. This paper introduces a capability framework to assess the responsible use of intelligent BCI systems and provide practical ethical guidance. It proposes two tests, the threshold and flourishing tests, that BCI applications must meet, and illustrates them in a series of cases. After a brief introduction (Section 1), Section 2 sets forth the capability view and the two tests. It illustrates the threshold (...)
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  24.  93
    The Presentation of Brain-computer Interfaces As Autonomy-enhancing Therapy Products.Toni Garbe - 2024 - NanoEthics 18 (3):1-15.
    This paper explores the societal and individual acceptance of technologies for the human body, focusing on brain-computer interfaces (BCIs), particularly Elon Musk's Neuralink. BCIs promise a direct connection between the brain and computers. Their acceptance depends on general aspects such as feasibility and usefulness. In the case of brain implants, they should also not jeopardize the user's autonomy or have a dehumanizing effect. In the case of innovative technologies that are still in development, such as BCIs, acceptance depends (...)
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  25.  90
    The Ethics of Thinking with Machines: Brain-Computer Interfaces in the Era of Artificial Intelligence.David M. Lyreskog, Hazem Zohny, Ilina Singh & Julian Savulescu - 2023 - International Journal of Chinese and Comparative Philosophy of Medicine 21 (2):11-34.
    LANGUAGE NOTE | Document text in English; abstract also in Chinese. 腦機介面 (BCIs) 是大腦和電腦無需人工交互即可直接交流的一系列技術。隨著人工智能 (AI) 時代的到來,我們需要更多地關注腦機介面和人工智能的融合所帶來的倫理問題。那麼,與機器一起思考會帶來什麼樣的倫理問題?在本文中,圍繞這一主題,我們將重點關注以下問題:自主性、完整性、身分認同、隱私,以及 作為一種增強的方式,該技術在兒科領域的應用會帶來怎樣的風險和潛在收益。我們的結論是,雖然該技術存在多種令人擔憂的問題,同時也有可能帶來好處,但仍存在很大的不確定性。如果生命倫理學家想在這一領域有所建樹 ,他們就應該做好準備來迎接我們對醫學和醫療保健領域中一些我們視為核心價值的理解的重大轉變。 Brain-Computer Interfaces – BCIs – are a set of technologies with which brains and computers can communicate directly, without the need for manual interaction. As we are witnessing the dawn of an era in which Artificial Intelligence (AI) quite possibly will come to dominate the technological innovation landscape, we are compelled to ask questions about the ethical issues which the convergence of BCIs and (...)
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  26.  58
    Ethical considerations for the use of brain–computer interfaces for cognitive enhancement.Emma C. Gordon & Anil K. Seth - unknown
    Brain–computer interfaces (BCIs) enable direct communication between the brain and external computers, allowing processing of brain activity and the ability to control external devices. While often used for medical purposes, BCIs may also hold great promise for nonmedical purposes to unlock human neurocognitive potential. In this Essay, we discuss the prospects and challenges of using BCIs for cognitive enhancement, focusing specifically on invasive enhancement BCIs (eBCIs). We discuss the ethical, legal, and scientific implications of eBCIs, including issues related (...)
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  27.  48
    Challenges of brain-computer interface facilitated cognitive assessment for children with cerebral palsy.Jane E. Huggins, Petra Karlsson & Seth A. Warschausky - 2022 - Frontiers in Human Neuroscience 16:977042.
    Brain-computer interfaces (BCIs) have been successfully used by adults, but little information is available on BCI use by children, especially children with severe multiple impairments who may need technology to facilitate communication. Here we discuss the challenges of using non-invasive BCI with children, especially children who do not have another established method of communication with unfamiliar partners. Strategies to manage these challenges require consideration of multiple factors related to accessibility, cognition, and participation. These factors include decisions regarding where (home, (...)
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  28.  97
    Thoughts Unlocked by Technology—a Survey in Germany About Brain-Computer Interfaces.J. R. Schmid, O. Friedrich, S. Kessner & R. J. Jox - 2021 - NanoEthics 15 (3):303-313.
    A brain-computer interface is a rapidly evolving neurotechnology connecting the human brain with a computer. In its classic form, brain activity is recorded and used to control external devices like protheses or wheelchairs. Thus, BCI users act with the power of their thoughts. While the initial development has focused on medical uses of BCIs, non-medical applications have recently been gaining more attention, for example in automobiles, airplanes, and the entertainment context. However, the attitudes of the general (...)
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  29. Justifying a Capability Approach to Brain Computer Interface.Andrew Ko & Nancy S. Jecker - 2023 - Philosophy and Technology 36 (1):1-6.
    Previously, we introduced a capability approach to assess the responsible use of brain-computer interface. In this commentary, we say more about the ethical basis of our capability view and respond to three objections. The first objection holds that by stressing that capability lists are provisional and subject to change, we threaten the persistence of human dignity, which is tied to capabilities. The second objection states that we conflate capabilities and abilities. The third objection claims that the goal (...)
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  30. Epistemological and phenomenological issues in the use of brain-computer interfaces.Richard Heersmink - 2011 - In C. Ess & R. Hagengruber, Proceedings of the International Association for Computing and Philosophy 2011 (pp. 98-102). MV-Wissenschaft.
    Brain-computer interfaces (BCIs) are an emerging and converging technology that translates the brain activity of its user into command signals for external devices, ranging from motorized wheelchairs, robotic hands, environmental control systems, and computer applications. In this paper I functionally decompose BCI systems and categorize BCI applications with similar functional properties into three categories, those with (1) motor, (2) virtual, and (3) linguistic applications. I then analyse the relationship between these distinct BCI applications and their users from an (...)
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  31.  69
    Ethical issues of brain-computer interfaces. Perspectives from a personalist bioethics.Sergio Ramon Götte - 2024 - Veritas: Revista de Filosofía y Teología 59:7-34.
    Resumen Las interfaces cerebro-computadora (ICCs) son tecnologías que proveen herramientas para la comunicación entre el ser humano y las computadoras. Dado que las nuevas técnicas asociadas a ICCs podrían influir en la autorregulación emocional, la memoria autobiográfica, el sentido del yo, la identidad, la autonomía, la autenticidad y las atribuciones de responsabilidad presentan importantes objeciones éticas. Entender las consecuencias a largo plazo de estas nuevas tecnologías puede ser difícil. Por lo tanto, los aspectos éticos vinculados a las ICCs necesitan ser (...)
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  32.  86
    An Intracortical Implantable Brain-Computer Interface for Telemetric Real-Time Recording and Manipulation of Neuronal Circuits for Closed-Loop Intervention.Hamed Zaer, Ashlesha Deshmukh, Dariusz Orlowski, Wei Fan, Pierre-Hugues Prouvot, Andreas Nørgaard Glud, Morten Bjørn Jensen, Esben Schjødt Worm, Slávka Lukacova, Trine Werenberg Mikkelsen, Lise Moberg Fitting, John R. Adler, M. Bret Schneider, Martin Snejbjerg Jensen, Quanhai Fu, Vinson Go, James Morizio, Jens Christian Hedemann Sørensen & Albrecht Stroh - 2021 - Frontiers in Human Neuroscience 15.
    Recording and manipulating neuronal ensemble activity is a key requirement in advanced neuromodulatory and behavior studies. Devices capable of both recording and manipulating neuronal activity brain-computer interfaces should ideally operate un-tethered and allow chronic longitudinal manipulations in the freely moving animal. In this study, we designed a new intracortical BCI feasible of telemetric recording and stimulating local gray and white matter of visual neural circuit after irradiation exposure. To increase the translational reliance, we put forward a Göttingen minipig model. (...)
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  33.  95
    The Application of Brain-Computer Interface in Upper Limb Dysfunction After Stroke: A Systematic Review and Meta-Analysis of Randomized Controlled Trials.Yang Peng, Jing Wang, Zicai Liu, Lida Zhong, Xin Wen, Pu Wang, Xiaoqian Gong & Huiyu Liu - 2022 - Frontiers in Human Neuroscience 16.
    ObjectiveThis study aimed to examine the effectiveness and safety of the Brain-computer interface in treatment of upper limb dysfunction after stroke.MethodsEnglish and Chinese electronic databases were searched up to July 2021. Randomized controlled trials were eligible. The methodological quality was assessed using Cochrane’s risk-of-bias tool. Meta-analysis was performed using RevMan 5.4.ResultsA total of 488 patients from 16 RCTs were included. The results showed that the meta-analysis of BCI-combined treatment on the improvement of the upper limb function showed statistical (...)
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  34. Ghost in the Machine: A Philosophical Analysis of the Relationship Between Brain-Computer Interface Applications and their Users.Richard Heersmink - 2009 - Dissertation, University of Twente.
    This Master’s thesis explores the relationship between Brain-Computer Interfaces (BCIs) and their human users from a functional, epistemological and phenomenological perspective. The analysis has four steps. I start out with a technical description of BCI systems in which I conceptually analyze different types of BCI applications. This results in the development of a taxonomy of applications which is the point of departure for further philosophical analysis. Thereafter, I explore the functional relationship between BCI applications and their users. That (...)
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  35. What is it like to use a BCI? – insights from an interview study with brain-computer interface users.Johannes Kögel, Ralf J. Jox & Orsolya Friedrich - 2020 - BMC Medical Ethics 21 (1):1-14.
    BackgroundThe neurotechnology behind brain-computer interfaces (BCIs) raises various ethical questions. The ethical literature has pinpointed several issues concerning safety, autonomy, responsibility and accountability, psychosocial identity, consent, privacy and data security. This study aims to assess BCI users’ experiences, self-observations and attitudes in their own right and looks for social and ethical implications.MethodsWe conducted nine semi-structured interviews with BCI users, who used the technology for medical reasons. The transcribed interviews were analyzed according to the Grounded Theory coding method.ResultsBCI users perceive (...)
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  36.  69
    A Survey on Deep Learning-Based Short/Zero-Calibration Approaches for EEG-Based Brain–Computer Interfaces.Wonjun Ko, Eunjin Jeon, Seungwoo Jeong, Jaeun Phyo & Heung-Il Suk - 2021 - Frontiers in Human Neuroscience 15:643386.
    Brain–computer interfaces (BCIs) utilizing machine learning techniques are an emerging technology that enables a communication pathway between a user and an external system, such as a computer. Owing to its practicality, electroencephalography (EEG) is one of the most widely used measurements for BCI. However, EEG has complex patterns and EEG-based BCIs mostly involve a cost/time-consuming calibration phase; thus, acquiring sufficient EEG data is rarely possible. Recently, deep learning (DL) has had a theoretical/practical impact on BCI research because of (...)
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  37.  49
    A pediatric near-infrared spectroscopy brain-computer interface based on the detection of emotional valence.Erica D. Floreani, Silvia Orlandi & Tom Chau - 2022 - Frontiers in Human Neuroscience 16:938708.
    Brain-computer interfaces (BCIs) are being investigated as an access pathway to communication for individuals with physical disabilities, as the technology obviates the need for voluntary motor control. However, to date, minimal research has investigated the use of BCIs for children. Traditional BCI communication paradigms may be suboptimal given that children with physical disabilities may face delays in cognitive development and acquisition of literacy skills. Instead, in this study we explored emotional state as an alternative access pathway to communication. We (...)
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  38.  42
    A P300 Brain-Computer Interface Paradigm Based on Electric and Vibration Simple Command Tactile Stimulation.Chenxi Chu, Jingjing Luo, Xiwei Tian, Xiangke Han & Shijie Guo - 2021 - Frontiers in Human Neuroscience 15.
    This paper proposed a novel tactile-stimuli P300 paradigm for Brain-Computer Interface, which potentially targeted at people with less learning ability or difficulty in maintaining attention. The new paradigm using only two types of stimuli was designed, and different targets were distinguished by frequency and spatial information. The classification algorithm was developed by introducing filters for frequency bands selection and conducting optimization with common spatial pattern on the tactile evoked EEG signals. It features a combination of spatial and frequency (...)
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    Advancing Brain-Computer Interface Applications for Severely Disabled Children Through a Multidisciplinary National Network: Summary of the Inaugural Pediatric BCI Canada Meeting.Eli Kinney-Lang, Dion Kelly, Erica D. Floreani, Zeanna Jadavji, Danette Rowley, Ephrem Takele Zewdie, Javad R. Anaraki, Hosein Bahari, Kim Beckers, Karen Castelane, Lindsey Crawford, Sarah House, Chelsea A. Rauh, Amber Michaud, Matheus Mussi, Jessica Silver, Corinne Tuck, Kim Adams, John Andersen, Tom Chau & Adam Kirton - 2020 - Frontiers in Human Neuroscience 14.
    Thousands of youth suffering from acquired brain injury or other early-life neurological disease live, mature, and learn with only limited communication and interaction with their world. Such cognitively capable children are ideal candidates for brain-computer interfaces. While BCI systems are rapidly evolving, a fundamental gap exists between technological innovators and the patients and families who stand to benefit. Forays into translating BCI systems to children in recent years have revealed that kids can learn to operate simple BCI with proficiency (...)
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  40. The role of cognitive modeling for user interface design representations: An epistemological analysis of knowledge engineering in the context of human-computer interaction. [REVIEW]Markus F. Peschl & Chris Stary - 1998 - Minds and Machines 8 (2):203-236.
    In this paper we review some problems with traditional approaches for acquiring and representing knowledge in the context of developing user interfaces. Methodological implications for knowledge engineering and for human-computer interaction are studied. It turns out that in order to achieve the goal of developing human-oriented (in contrast to technology-oriented) human-computer interfaces developers have to develop sound knowledge of the structure and the representational dynamics of the cognitive system which is interacting with the computer.We (...)
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  41.  67
    What It Takes to Be a Pioneer: Ability Expectations From Brain-Computer Interface Users.Johannes Kögel & Gregor Wolbring - 2020 - NanoEthics 14 (3):227-239.
    Brain-computer interfaces are envisioned to enable new abilities of action. This potential can be fruitful in particular when it comes to restoring lost motion or communication abilities or to implementing new possibilities of action. However, BCIs do not come without presuppositions. Applying the concept of ability expectations to BCIs, a wide range of requirements on the side of the users becomes apparent. We examined these ability expectations by taking the example of therapeutic BCI users who got enrolled into BCI (...)
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  42. fNIRS-based brain-computer interfaces: a review.Noman Naseer & Keum-Shik Hong - 2015 - Frontiers in Human Neuroscience 9.
  43.  71
    Modulation of Functional Connectivity and Low-Frequency Fluctuations After Brain-Computer Interface-Guided Robot Hand Training in Chronic Stroke: A 6-Month Follow-Up Study.Cathy C. Y. Lau, Kai Yuan, Patrick C. M. Wong, Winnie C. W. Chu, Thomas W. Leung, Wan-wa Wong & Raymond K. Y. Tong - 2021 - Frontiers in Human Neuroscience 14:611064.
    Hand function improvement in stroke survivors in the chronic stage usually plateaus by 6 months. Brain-computer interface (BCI)-guided robot-assisted training has been shown to be effective for facilitating upper-limb motor function recovery in chronic stroke. However, the underlying neuroplasticity change is not well understood. This study aimed to investigate the whole-brain neuroplasticity changes after 20-session BCI-guided robot hand training, and whether the changes could be maintained at the 6-month follow-up. Therefore, the clinical improvement and the neurological changes before, (...)
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  44.  47
    Progressive Training for Motor Imagery Brain-Computer Interfaces Using Gamification and Virtual Reality Embodiment.Filip Škola, Simona Tinková & Fotis Liarokapis - 2019 - Frontiers in Human Neuroscience 13:460265.
    This paper presents a gamified motor imagery brain-computer interface (MI-BCI) training in immersive virtual reality. Aim of the proposed training method is to increase engagement, attention, and motivation in co-adaptive event-driven MI-BCI training. This was achieved using gamification, progressive increase of the training pace, and virtual reality design reinforcing the body ownership transfer (embodiment) into the avatar. From the 20 healthy participants performing 6 runs of 2-class MI-BCI training (left/right hand), 19 were trained for a basic level of (...)
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  45.  44
    On the feasibility of simple brain-computer interface systems for enabling children with severe physical disabilities to explore independent movement.Erica D. Floreani, Danette Rowley, Dion Kelly, Eli Kinney-Lang & Adam Kirton - 2022 - Frontiers in Human Neuroscience 16:1007199.
    IntroductionChildren with severe physical disabilities are denied their fundamental right to move, restricting their development, independence, and participation in life. Brain-computer interfaces (BCIs) could enable children with complex physical needs to access power mobility (PM) devices, which could help them move safely and independently. BCIs have been studied for PM control for adults but remain unexamined in children. In this study, we explored the feasibility of BCI-enabled PM control for children with severe physical disabilities, assessing BCI performance, standard PM (...)
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  46.  76
    Vividness of Visual Imagery and Personality Impact Motor-Imagery Brain Computer Interfaces.Nikki Leeuwis, Alissa Paas & Maryam Alimardani - 2021 - Frontiers in Human Neuroscience 15.
    Brain-computer interfaces are communication bridges between a human brain and external world, enabling humans to interact with their environment without muscle intervention. Their functionality, therefore, depends on both the BCI system and the cognitive capacities of the user. Motor-imagery BCIs rely on the users’ mental imagination of body movements. However, not all users have the ability to sufficiently modulate their brain activity for control of a MI-BCI; a problem known as BCI illiteracy or inefficiency. The underlying mechanism of (...)
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  47.  51
    Abilities, Capabilities, and Brain-Computer Interfaces: a Response to Jecker and Ko.Matthew S. Lindia - 2022 - Philosophy and Technology 36 (1):1-6.
    In a recent article, Jecker and Ko propose that a capabilities approach can be useful as an ethical framework for evaluating the use of BCI applications. Jecker and Ko defend this application, in part, because a capabilities list is not necessarily unchanging, but can account for rapid enhancements in human abilities. In this commentary, I argue that, though the capabilities approach is provisional, its primary relevance for BCI emerges from the ways in which capabilities remain constant amidst changing (...) abilities. (shrink)
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  48.  59
    Toward a P300 Based Brain-Computer Interface for Aphasia Rehabilitation after Stroke: Presentation of Theoretical Considerations and a Pilot Feasibility Study.Sonja C. Kleih, Lea Gottschalt, Eva Teichlein & Franz X. Weilbach - 2016 - Frontiers in Human Neuroscience 10:196919.
    People with post-stroke motor aphasia know what they would like to say but cannot express it through motor pathways due to disruption of cortical circuits. We present a theoretical background for our hypothesized connection between attention and aphasia rehabilitation and suggest why in this context, Brain-Computer Interfaces (BCI) use might be beneficial for patients diagnosed with aphasia. Not only could BCI technology provide a communication tool, it might support neuronal plasticity by activating language circuits and thereby boost aphasia recovery. (...)
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  49. EEG-Based Brain–Computer Interfaces for Communication and Rehabilitation of People with Motor Impairment: A Novel Approach of the 21st Century.Ioulietta Lazarou, Spiros Nikolopoulos, Panagiotis C. Petrantonakis, Ioannis Kompatsiaris & Magda Tsolaki - 2018 - Frontiers in Human Neuroscience 12.
  50. Do Publics Share Experts’ Concerns about Brain–Computer Interfaces? A Trinational Survey on the Ethics of Neural Technology.Matthew Sample, Sebastian Sattler, David Rodriguez-Arias, Stefanie Blain-Moraes & Eric Racine - 2019 - Science, Technology, and Human Values 2019 (6):1242-1270.
    Since the 1960s, scientists, engineers, and healthcare professionals have developed brain–computer interface (BCI) technologies, connecting the user’s brain activity to communication or motor devices. This new technology has also captured the imagination of publics, industry, and ethicists. Academic ethics has highlighted the ethical challenges of BCIs, although these conclusions often rely on speculative or conceptual methods rather than empirical evidence or public engagement. From a social science or empirical ethics perspective, this tendency could be considered problematic and even (...)
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