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Multiple-Time-Scale Dynamical Systems (Hardcover, 2001 ed.): Christopher K.R.T. Jones, Alexander I. Khibnik Multiple-Time-Scale Dynamical Systems (Hardcover, 2001 ed.)
Christopher K.R.T. Jones, Alexander I. Khibnik
R4,606 Discovery Miles 46 060 Ships in 12 - 17 working days

Systems with sub-processes evolving on many different time scales are ubiquitous in applications: chemical reactions, electro-optical and neuro-biological systems, to name just a few. This volume contains papers that expose the state of the art in mathematical techniques for analyzing such systems. Recently developed geometric ideas are highlighted in this work that includes a theory of relaxation-oscillation phenomena in higher dimensional phase spaces. Subtle exponentially small effects result from singular perturbations implicit in certain multiple time scale systems. Their role in the slow motion of fronts, bifurcations, and jumping between invariant tori are all explored here. Neurobiology has played a particularly stimulating role in the development of these techniques and one paper is directed specifically at applying geometric singular perturbation theory to reveal the synchrony in networks of neural oscillators.

Multiple-Time-Scale Dynamical Systems (Paperback, Softcover reprint of the original 1st ed. 2001): Christopher K.R.T. Jones,... Multiple-Time-Scale Dynamical Systems (Paperback, Softcover reprint of the original 1st ed. 2001)
Christopher K.R.T. Jones, Alexander I. Khibnik
R1,492 Discovery Miles 14 920 Out of stock

Systems with sub-processes evolving on many different time scales are ubiquitous in applications: chemical reactions, electro-optical and neuro-biological systems, to name just a few. This volume contains papers that expose the state of the art in mathematical techniques for analyzing such systems. Recently developed geometric ideas are highlighted in this work that includes a theory of relaxation-oscillation phenomena in higher dimensional phase spaces. Subtle exponentially small effects result from singular perturbations implicit in certain multiple time scale systems. Their role in the slow motion of fronts, bifurcations, and jumping between invariant tori are all explored here. Neurobiology has played a particularly stimulating role in the development of these techniques and one paper is directed specifically at applying geometric singular perturbation theory to reveal the synchrony in networks of neural oscillators.

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