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Dynamical Systems in Neuroscience (The Geometry of Excitability and Bursting)

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9780262514200
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  • Product Details

    Author:
    Eugene M. Izhikevich
    Series:
    Computational Neuroscience Series
    Format:
    Paperback
    Pages:
    458
    Publisher:
    MIT Press (January 22, 2010)
    Language:
    English
    ISBN-13:
    9780262514200
    ISBN-10:
    0262514206
    Weight:
    28oz
    Dimensions:
    7.06" x 10.06" x 0.95"
    Case Pack:
    10
    File:
    RandomHouse-PRH_Book_Company_PRH_PRT_Onix_full_active_D20260405T162751_155746722-20260405.xml
    Folder:
    RandomHouse
    List Price:
    $50.00
    As low as:
    $38.50
    Publisher Identifier:
    P-RH
    Discount Code:
    A
    QuickShip:
    Yes
    Audience:
    General/trade
    Country of Origin:
    United States
    Pub Discount:
    65
    Imprint:
    The MIT Press
  • Overview

    Explains the relationship of electrophysiology, nonlinear dynamics, and the computational properties of neurons, with each concept presented in terms of both neuroscience and mathematics and illustrated using geometrical intuition.

    In order to model neuronal behavior or to interpret the results of modeling studies, neuroscientists must call upon methods of nonlinear dynamics. This book offers an introduction to nonlinear dynamical systems theory for researchers and graduate students in neuroscience. It also provides an overview of neuroscience for mathematicians who want to learn the basic facts of electrophysiology.

    Dynamical Systems in Neuroscience presents a systematic study of the relationship of electrophysiology, nonlinear dynamics, and computational properties of neurons. It emphasizes that information processing in the brain depends not only on the electrophysiological properties of neurons but also on their dynamical properties. The book introduces dynamical systems, starting with one- and two-dimensional Hodgkin-Huxley-type models and continuing to a description of bursting systems. Each chapter proceeds from the simple to the complex, and provides sample problems at the end. The book explains all necessary mathematical concepts using geometrical intuition; it includes many figures and few equations, making it especially suitable for non-mathematicians. Each concept is presented in terms of both neuroscience and mathematics, providing a link between the two disciplines.

    Nonlinear dynamical systems theory is at the core of computational neuroscience research, but it is not a standard part of the graduate neuroscience curriculum—or taught by math or physics department in a way that is suitable for students of biology. This book offers neuroscience students and researchers a comprehensive account of concepts and methods increasingly used in computational neuroscience.

    An additional chapter on synchronization, with more advanced material, can be found at the author's website, www.izhikevich.com.