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The Statistical Mechanics of Interacting Walks, Polygons, Animals and Vesicles (Oxford Lecture Series in Mathematics and Its Applications)

By: E.J. Janse van Rensburg (Author)

Manufacture on Demand

Ksh 37,450.00

Format: Hardback or Cased Book

ISBN-10: 0199666571

ISBN-13: 9780199666577

Collection / Series: Oxford Lecture Series in Mathematics and Its Applications

Collection Type: Publisher collection

Edition statement: 2 Revised edition

Publisher: Oxford University Press

Imprint: Oxford University Press

Country of Manufacture: GB

Country of Publication: GB

Publication Date: May 14th, 2015

Publication Status: Active

Product extent: 640 Pages

Weight: 1154.00 grams

Dimensions (height x width x thickness): 16.50 x 24.10 x 3.70 cms

Product Classification / Subject(s): Geometry
Topology
Probability & statistics
Mathematical physics

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This monograph examines the self-avoiding walk, a classical model in statistical mechanics, probability theory and mathematical physics, paying close attention to recent developments in the field, such as models in the hexagonal lattice and the Monte Carlo methods.
The self-avoiding walk is a classical model in statistical mechanics, probability theory and mathematical physics. It is also a simple model of polymer entropy which is useful in modelling phase behaviour in polymers. This monograph provides an authoritative examination of interacting self-avoiding walks, presenting aspects of the thermodynamic limit, phase behaviour, scaling and critical exponents for lattice polygons, lattice animals and surfaces. It also includes a comprehensive account of constructive methods in models of adsorbing, collapsing, and pulled walks, animals and networks, and for models of walks in confined geometries. Additional topics include scaling, knotting in lattice polygons, generating function methods for directed models of walks and polygons, and an introduction to the Edwards model.This essential second edition includes recent breakthroughs in the field, as well as maintaining the older but still relevant topics. New chapters include an expanded presentation of directed models, an exploration of methods and results for the hexagonal lattice, and a chapter devoted to the Monte Carlo methods.

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