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An Introductory Course in Computational Neuroscience

List Price: $60.00
SKU:
9780262038256
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  • Product Details

    Author:
    Paul Miller
    Series:
    Computational Neuroscience Series
    Format:
    Hardcover
    Pages:
    408
    Publisher:
    MIT Press (October 2, 2018)
    Language:
    English
    ISBN-13:
    9780262038256
    ISBN-10:
    0262038250
    Weight:
    32.85oz
    Dimensions:
    7.25" x 9.25" x 1.21"
    Case Pack:
    12
    File:
    RandomHouse-PRH_Book_Company_PRH_PRT_Onix_full_active_D20260405T163451_155746733-20260405.xml
    Folder:
    RandomHouse
    List Price:
    $60.00
    As low as:
    $46.20
    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

    A textbook for students with limited background in mathematics and computer coding, emphasizing computer tutorials that guide readers in producing models of neural behavior.

    This introductory text teaches students to understand, simulate, and analyze the complex behaviors of individual neurons and brain circuits. It is built around computer tutorials that guide students in producing models of neural behavior, with the associated Matlab code freely available online. From these models students learn how individual neurons function and how, when connected, neurons cooperate in a circuit. The book demonstrates through simulated models how oscillations, multistability, post-stimulus rebounds, and chaos can arise within either single neurons or circuits, and it explores their roles in the brain.

    The book first presents essential background in neuroscience, physics, mathematics, and Matlab, with explanations illustrated by many example problems. Subsequent chapters cover the neuron and spike production; single spike trains and the underlying cognitive processes; conductance-based models; the simulation of synaptic connections; firing-rate models of large-scale circuit operation; dynamical systems and their components; synaptic plasticity; and techniques for analysis of neuron population datasets, including principal components analysis, hidden Markov modeling, and Bayesian decoding.

    Accessible to undergraduates in life sciences with limited background in mathematics and computer coding, the book can be used in a “flipped” or “inverted” teaching approach, with class time devoted to hands-on work on the computer tutorials. It can also be a resource for graduate students in the life sciences who wish to gain computing skills and a deeper knowledge of neural function and neural circuits.