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Books on the topic 'Brain interfacing'

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1

Miranda, Eduardo Reck, and Julien Castet, eds. Guide to Brain-Computer Music Interfacing. Springer London, 2014. http://dx.doi.org/10.1007/978-1-4471-6584-2.

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2

Schalk, Gerwin, and Jürgen Mellinger. A Practical Guide to Brain–Computer Interfacing with BCI2000. Springer London, 2010. http://dx.doi.org/10.1007/978-1-84996-092-2.

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3

Coates, Thomas D. Neural interfacing: Forging the human-machine connection. Morgan & Claypool Publishers, 2008.

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4

Schalk, Gerwin. A practical guide to brain-computer interfacing with BCI2000: General-purpose software for brain-computer interface research, data acquisition, stimulus presentation, and brain monitoring. Springer, 2010.

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5

Dornhege, Guido, José del R. Millán, Thilo Hinterberger, Dennis J. McFarland, and Klaus-Robert Müller, eds. Toward Brain-Computer Interfacing. The MIT Press, 2007. http://dx.doi.org/10.7551/mitpress/7493.001.0001.

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6

Toward brain-computer interfacing. MIT Press, 2007.

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7

Toward brain-computer interfacing. MIT Press, 2008.

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8

Mcfarland, Dennis J., Jose del R. Millan, Guido Dornhege, Thilo Hinterberger, and Klaus-robert Müller. Toward Brain-Computer Interfacing. MIT Press, 2007.

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9

Toward Brain-Computer Interfacing. MIT Press, 2019.

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10

Rao, Rajesh P. N. Brain-Computer Interfacing: An Introduction. Cambridge University Press, 2013.

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11

Rao, Rajesh P. N. Brain-Computer Interfacing: An Introduction. Cambridge University Press, 2019.

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12

Brain-Computer Interfacing: An Introduction. Cambridge University Press, 2013.

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13

Sawan, Mohamad, Amir Sodagar, and Maysam Ghovanloo. Implantable Microsystems for Brain-Machine Interfacing. Wiley & Sons, Limited, John, 2022.

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14

Sawan, Mohamad, Amir Sodagar, and Maysam Ghovanloo. Implantable Microsystems for Brain-Machine Interfacing. Wiley & Sons, Limited, John, 2022.

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15

Sawan, Mohamad, Amir Sodagar, and Maysam Ghovanloo. Implantable Microsystems for Brain-Machine Interfacing. Wiley & Sons, Incorporated, John, 2022.

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16

Sawan, Mohamad, Amir Sodagar, and Maysam Ghovanloo. Implantable Microsystems for Brain-Machine Interfacing. Wiley & Sons, Incorporated, John, 2022.

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17

Brain-Computer Interfacing for Assistive Robotics. Elsevier, 2015. http://dx.doi.org/10.1016/c2013-0-23408-5.

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18

Miranda, Eduardo Reck, and Julien Castet. Guide to Brain-Computer Music Interfacing. Springer London, Limited, 2014.

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19

Miranda, Eduardo Reck, and Julien Castet. Guide to Brain-Computer Music Interfacing. Springer, 2016.

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20

Miranda, Eduardo Reck, and Julien Castet. Guide to Brain-Computer Music Interfacing. Springer, 2014.

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21

Miranda, Eduardo Reck, and Julien Castet. Guide to Brain-Computer Music Interfacing. Springer, 2014.

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22

(Foreword), Terrence J. Sejnowski, Guido Dornhege (Editor), José del R. Millán (Editor), Thilo Hinterberger (Editor), Dennis J. McFarland (Editor), and Klaus-Robert Müller (Editor), eds. Toward Brain-Computer Interfacing (Neural Information Processing). The MIT Press, 2007.

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23

Jiang, Yizhang, Yu-Dong Zhang, and Mohammad Khosravi, eds. Advanced Deep-Transfer-Leveraged Studies on Brain-Computer Interfacing. Frontiers Media SA, 2021. http://dx.doi.org/10.3389/978-2-88971-468-1.

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24

Schalk, Gerwin, and Jürgen Mellinger. A Practical Guide to Brain-Computer Interfacing with BCI2000. Springer, 2010.

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25

Schalk, Gerwin, and Jürgen Mellinger. Practical Guide to Brain-Computer Interfacing with BCI2000: General-Purpose Software for Brain-Computer Interface Research, Data Acquisition, Stimulus Presentation, and Brain Monitoring. Springer London, Limited, 2010.

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26

Konar, Amit, Pratyusha Rakshit, and Lidia Ghosh. Cognitive Modeling of Human Memory and Learning: A Non-Invasive Brain-Computer Interfacing Approach. Wiley & Sons, Incorporated, John, 2020.

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27

Konar, Amit, Pratyusha Rakshit, and Lidia Ghosh. Cognitive Modeling of Human Memory and Learning: A Non-Invasive Brain-Computer Interfacing Approach. Wiley & Sons, Incorporated, John, 2020.

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28

Konar, Amit, Pratyusha Rakshit, and Lidia Ghosh. Cognitive Modeling of Human Memory and Learning: A Non-Invasive Brain-Computer Interfacing Approach. Wiley & Sons, Limited, John, 2020.

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29

Konar, Amit, Pratyusha Rakshit, and Lidia Ghosh. Cognitive Modeling of Human Memory and Learning: A Non-Invasive Brain-Computer Interfacing Approach. Wiley & Sons, Incorporated, John, 2020.

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30

Schalk, Gerwin, and Jürgen Mellinger. A Practical Guide to Brain–Computer Interfacing with BCI2000: General-Purpose Software for Brain-Computer Interface Research, Data Acquisition, Stimulus Presentation, and Brain Monitoring. Springer, 2014.

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31

Gandhi, Vaibhav. Brain-Computer Interfacing for Assistive Robotics: Electroencephalograms, Recurrent Quantum Neural Networks, and User-Centric Graphical Interfaces. Academic Press, 2014.

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32

Gandhi, Vaibhav. Brain-Computer Interfacing for Assistive Robotics: Electroencephalograms, Recurrent Quantum Neural Networks, and User-Centric Graphical Interfaces. Elsevier Science & Technology Books, 2014.

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33

Glannon, Walter. Neural Prosthetics. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198813910.001.0001.

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Neural prosthetics (neuroprostheses, neural prostheses) are devices or systems that influence the input and output of information in the brain. They modulate, bypass, supplement, or replace regions of the brain and its connections to the body that are damaged, dysfunctional, or lost from brain injury, congenital conditions, limb loss, or neurodegenerative disease. Neural prosthetics can generate, improve, or restore sensory, motor, and cognitive functions. Some prosthetics are implanted in the brain. Others are connected to it in brain–computer interfacing. This book describes auditory and vis
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34

Bensmaia, Sliman J. Biohybrid touch interfaces. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199674923.003.0053.

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This chapter on biohybrid touch interfaces discusses the importance of touch in everyday life, namely in object manipulation, embodiment, and emotional communication. It then describes approaches to restore touch for individuals who have lost a limb or who have upper spinal cord injuries (SCIs) and thus have lost sensation from their limbs. One promising approach to restoring sensorimotor function in these patients is to fit them with robotic prostheses. For these limbs to be clinically viable, however, the patients must not only be able to control movements of the limb but also be able to rec
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