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Adaptation in Dynamical Systems

Adaptation in Dynamical Systems

Adaptation in Dynamical Systems

Ivan Tyukin, University of Leicester
March 2011
Hardback
9780521198196
$114.00
USD
Hardback
USD
eBook

    In the context of this book, adaptation is taken to mean a feature of a system aimed at achieving the best possible performance, when mathematical models of the environment and the system itself are not fully available. This has applications ranging from theories of visual perception and the processing of information, to the more technical problems of friction compensation and adaptive classification of signals in fixed-weight recurrent neural networks. Largely devoted to the problems of adaptive regulation, tracking and identification, this book presents a unifying system-theoretic view on the problem of adaptation in dynamical systems. Special attention is given to systems with nonlinearly parameterized models of uncertainty. Concepts, methods and algorithms given in the text can be successfully employed in wider areas of science and technology. The detailed examples and background information make this book suitable for a wide range of researchers and graduates in cybernetics, mathematical modelling and neuroscience.

    • Readers can see the theory at work through examples of well-recognized problems in areas such as computational neuroscience and the mathematical modelling of neural systems
    • Contains all necessary background information and elementary proofs so readers can understand the main theoretical concepts
    • The concepts, methods and algorithms presented can be successfully employed in wider areas of science and technology

    Product details

    February 2011
    Adobe eBook Reader
    9780511855658
    0 pages
    0kg
    52 b/w illus.
    This ISBN is for an eBook version which is distributed on our behalf by a third party.

    Table of Contents

    • Part I. Introduction and Preliminaries:
    • 1. Introduction
    • 2. Preliminaries
    • 3. The problem of adaptation in dynamical systems
    • Part II. Theory:
    • 4. Input-output analysis of uncertain dynamical systems
    • 5. Adaptive regulation in dynamical systems in presence of nonlinear parametrization and unstable target dynamics
    • Part III. Applications:
    • 6. Adaptive behaviour in recurrent neural networks with fixed weights
    • 7. Adaptive template matching in systems for processing of visual information
    • 8. State and parameter estimation of neural oscillators
    • Appendix
    • References
    • Index.