Analysis and Classification of EEG Signals for Brain–Computer Interfaces (Studies in Computational Intelligence, 852)

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Management number 237215981 Release Date 2026/07/10 List Price US$30.69 Model Number 237215981
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This book addresses the problem of EEG signal analysis and the need to classify it for practical use in many sample implementations of brain–computer interfaces. In addition, it offers a wealth of information, ranging from the description of data acquisition methods in the field of human brain work, to the use of Moore–Penrose pseudo inversion to reconstruct the EEG signal and the LORETA method to locate sources of EEG signal generation for the needs of BCI technology. In turn, the book explores the use of neural networks for the classification of changes in the EEG signal based on facial expressions. Further topics touch on machine learning, deep learning, and neural networks. The book also includes dedicated implementation chapters on the use of brain–computer technology in the field of mobile robot control based on Python and the LabVIEW environment. In closing, it discusses the problem of the correlation between brain–computer technology and virtual reality technology. Read more

ISBN10 303030583X
ISBN13 978-3030305833
Edition 1st ed. 2020
Language English
Publisher Springer
Dimensions 6.1 x 0.32 x 9.25 inches
Item Weight 7.2 ounces
Print length 140 pages
Part of series Studies in Computational Intelligence
Publication date September 11, 2020

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