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While many scientists are familiar with fractals, fewer are familiar with scale-invariance and universality which underlie the ubiquity of their shapes. These properties may emerge from the collective behaviour of simple fundamental constituents, and are studied using statistical field theories. Initial chapters connect the particulate perspective developed in the companion volume, to the coarse grained statistical fields studied here. Based on lectures taught by Professor Kardar at MIT, this textbook demonstrates how such theories are formulated and studied. Perturbation theory, exact solutions, renormalization groups, and other tools are employed to demonstrate the emergence of scale invariance and universality, and the non-equilibrium dynamics of interfaces and directed paths in random media are discussed. Ideal for advanced graduate courses in statistical physics, it contains an integrated set of problems, with solutions to selected problems at the end of the book and a complete set available to lecturers at www.cambridge.org/9780521873413.
Statistical physics --- Field theory (Physics) --- Statistical physics. --- Champs, Théorie des (Physique) --- Physique statistique --- Champs, Théorie des (Physique) --- Physics --- Mathematical statistics --- Classical field theory --- Continuum physics --- Continuum mechanics --- Statistical methods
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Group theory --- Topology --- Number theory --- Galois, Evariste --- 51 <082.1> --- Mathematics--Series --- Number theory. --- Galois theory. --- Group theory. --- Polynomials. --- Field theory (Physics) --- Nombres, Théorie des. --- Galois, Théorie de. --- Groupes, Théorie des. --- Polynômes. --- Champs, Théorie des (physique) --- Galois theory --- Polynomials --- Number study --- Numbers, Theory of --- Algebra --- Groups, Theory of --- Substitutions (Mathematics) --- Equations, Theory of --- Classical field theory --- Continuum physics --- Physics --- Continuum mechanics
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