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Wavelets in Neuroscience
~
Sitnikova, Evgenia.
Wavelets in Neuroscience
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Wavelets in Neuroscience/ by Alexander E. Hramov, Alexey A. Koronovskii, Valeri A. Makarov, Alexey N. Pavlov, Evgenia Sitnikova.
作者:
Hramov, Alexander E.
其他作者:
Koronovskii, Alexey A.
面頁冊數:
XVI, 318 p. 138 illus., 20 illus. in color.online resource. :
Contained By:
Springer Nature eBook
標題:
Statistical physics. -
電子資源:
https://doi.org/10.1007/978-3-662-43850-3
ISBN:
9783662438503
Wavelets in Neuroscience
Hramov, Alexander E.
Wavelets in Neuroscience
[electronic resource] /by Alexander E. Hramov, Alexey A. Koronovskii, Valeri A. Makarov, Alexey N. Pavlov, Evgenia Sitnikova. - 1st ed. 2015. - XVI, 318 p. 138 illus., 20 illus. in color.online resource. - Springer Series in Synergetics,0172-7389. - Springer Series in Synergetics,.
MathematicalMethods of Signal Processing in Neuroscience -- Brief Tour of Wavelet Theory -- Analysis of Single Neuron Recordings -- Classification of Neuronal Spikes from Extracellular Recordings -- Wavelet Approach to the Study of Rhythmic Neuronal Activity -- Time–Frequency Analysis of EEG: From Theory to Practice -- Automatic Diagnostics and Processing of EEG -- Conclusion -- Index.
This book examines theoretical and applied aspects of wavelet analysis in neurophysics, describing in detail different practical applications of the wavelet theory in the areas of neurodynamics and neurophysiology and providing a review of fundamental work that has been carried out in these fields over the last decade. Chapters 1 and 2 introduce and review the relevant foundations of neurophysics and wavelet theory, respectively, pointing on one hand to the various current challenges in neuroscience and introducing on the other the mathematical techniques of the wavelet transform in its two variants (discrete and continuous) as a powerful and versatile tool for investigating the relevant neuronal dynamics. Chapter 3 then analyzes results from examining individual neuron dynamics and intracellular processes. The principles for recognizing neuronal spikes from extracellular recordings and the advantages of using wavelets to address these issues are described and combined with approaches based on wavelet neural networks (chapter 4). The features of time-frequency organization of EEG signals are then extensively discussed, from theory to practical applications (chapters 5 and 6). Lastly, the technical details of automatic diagnostics and processing of EEG signals using wavelets are examined (chapter 7). The book will be a useful resource for neurophysiologists and physicists familiar with nonlinear dynamical systems and data processing, as well as for gradua te students specializing in the corresponding areas.
ISBN: 9783662438503
Standard No.: 10.1007/978-3-662-43850-3doiSubjects--Topical Terms:
528048
Statistical physics.
LC Class. No.: QC174.7-175.36
Dewey Class. No.: 621
Wavelets in Neuroscience
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