Towards a new cognitive neuroscience : : modeling natural brain dynamics / / topic editors, Klaus Gramann, Tzyy-Ping Jung, Daniel P. Ferris, Chin-Teng Lin and Scott Makeig.

Decades of brain imaging experiments have revealed important insights into the architecture of the human brain and the detailed anatomic basis for the neural dynamics supporting human cognition. However, technical restrictions of traditional brain imaging approaches including functional magnetic res...

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Place / Publishing House:[Lausanne, Switzerland] : : Frontiers Media SA,, 2014.
Year of Publication:2014
Language:English
Series:Frontiers Research Topics,
Physical Description:1 online resource (166 pages).
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spelling Klaus Gramann auth
Towards a new cognitive neuroscience : modeling natural brain dynamics / topic editors, Klaus Gramann, Tzyy-Ping Jung, Daniel P. Ferris, Chin-Teng Lin and Scott Makeig.
Frontiers Media SA 2014
[Lausanne, Switzerland] : Frontiers Media SA, 2014.
1 online resource (166 pages).
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Frontiers Research Topics, 1664-8714
Includes bibliographical references.
Description based on: online resource; title from pdf title page (frontiers, viewed Jul. 7, 2016).
Decades of brain imaging experiments have revealed important insights into the architecture of the human brain and the detailed anatomic basis for the neural dynamics supporting human cognition. However, technical restrictions of traditional brain imaging approaches including functional magnetic resonance tomography (fMRI), positron emission tomography (PET), and magnetoencephalography (MEG) severely limit participants' movements during experiments. As a consequence, our knowledge of the neural basis of human cognition is rooted in a dissociation of human cognition from what is arguably its foremost, and certainly its evolutionarily most determinant function, organizing our behavior so as to optimize its consequences in our complex, multi-scale, and ever-changing environment. The concept of natural cognition, therefore, should not be separated from our fundamental experience and role as embodied agents acting in a complex, partly unpredictable world. To gain new insights into the brain dynamics supporting natural cognition, we must overcome restrictions of traditional brain imaging technology. First, the sensors used must be lightweight and mobile to allow monitoring of brain activity during free participant movements. New hardware technology for electroencephalography (EEG) and near infrared spectroscopy (NIRS) allows recording electrical and hemodynamic brain activity while participants are freely moving. New data-driven analysis approaches must allow separation of signals arriving at the sensors from the brain and from non-brain sources (neck muscles, eyes, heart, the electrical environment, etc.). Independent component analysis (ICA) and related blind source separation methods allow separation of brain activity from non-brain activity from data recorded during experimental paradigms that stimulate natural cognition. Imaging the precisely timed, distributed brain dynamics that support all forms of our motivated actions and interactions in both laboratory and real-world settings requires new modes of data capture and of data processing. Synchronously recording participants’ motor behavior, brain activity, and other physiology, as well as their physical environment and external events may be termed mobile brain/body imaging ('MoBI'). Joint multi-stream analysis of recorded MoBI data is a major conceptual, mathematical, and data processing challenge. This Research Topic is one result of the first international MoBI meeting in Delmenhorst Germany in September 2013. During an intense workshop researchers from all over the world presented their projects and discussed new technological developments and challenges of this new imaging approach. Several of the presentations are compiled in this Research Topic that we hope may inspire new research using the MoBI paradigm to investigate natural cognition by recording and analyzing the brain dynamics and behavior of participants performing a wide range of naturally motivated actions and interactions.
English
Brain Imaging.
Neuroimaging.
fNIRS
EEG
Body Imaging
computational neuroscience
neuroergonomics
Wireless dry EEG Sensors
Biomechanics
Natural Cognition
Gait rehabilitation
Mobile Brain
Brain Mapping
Embodied Cognition
Mobile Brain Imaging
Wireless Sensing
2-88919-271-7
Gramann, Klaus, editor.
Jung, Tzyy-Ping, editor.
Ferris, Daniel P., editor.
Lin, C. T. (Ching Tai), 1944- editor.
Makeig, Scott, editor.
language English
format eBook
author Klaus Gramann
spellingShingle Klaus Gramann
Towards a new cognitive neuroscience : modeling natural brain dynamics /
Frontiers Research Topics,
author_facet Klaus Gramann
Gramann, Klaus,
Jung, Tzyy-Ping,
Ferris, Daniel P.,
Lin, C. T. 1944-
Makeig, Scott,
author_variant k g kg
author2 Gramann, Klaus,
Jung, Tzyy-Ping,
Ferris, Daniel P.,
Lin, C. T. 1944-
Makeig, Scott,
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t p j tpj
d p f dp dpf
c t l ct ctl
s m sm
author2_fuller (Ching Tai),
author2_role TeilnehmendeR
TeilnehmendeR
TeilnehmendeR
TeilnehmendeR
TeilnehmendeR
author_sort Klaus Gramann
title Towards a new cognitive neuroscience : modeling natural brain dynamics /
title_sub modeling natural brain dynamics /
title_full Towards a new cognitive neuroscience : modeling natural brain dynamics / topic editors, Klaus Gramann, Tzyy-Ping Jung, Daniel P. Ferris, Chin-Teng Lin and Scott Makeig.
title_fullStr Towards a new cognitive neuroscience : modeling natural brain dynamics / topic editors, Klaus Gramann, Tzyy-Ping Jung, Daniel P. Ferris, Chin-Teng Lin and Scott Makeig.
title_full_unstemmed Towards a new cognitive neuroscience : modeling natural brain dynamics / topic editors, Klaus Gramann, Tzyy-Ping Jung, Daniel P. Ferris, Chin-Teng Lin and Scott Makeig.
title_auth Towards a new cognitive neuroscience : modeling natural brain dynamics /
title_new Towards a new cognitive neuroscience :
title_sort towards a new cognitive neuroscience : modeling natural brain dynamics /
series Frontiers Research Topics,
series2 Frontiers Research Topics,
publisher Frontiers Media SA
Frontiers Media SA,
publishDate 2014
physical 1 online resource (166 pages).
isbn 2-88919-271-7
issn 1664-8714
callnumber-first Q - Science
callnumber-subject QP - Physiology
callnumber-label QP376
callnumber-sort QP 3376.6
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