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In modern mathematical physics, classical together with quantum, geometrical and functional analytic methods are used simultaneously. Non-commutative geometry in particular is becoming a useful tool in quantum field theories. This book, aimed at advanced students and researchers, provides an introduction to these ideas. Researchers will benefit particularly from the extensive survey articles on models relating to quantum gravity, string theory, and non-commutative geometry, as well as Connes' approach to the standard model.
In modern mathematical physics, classical together with quantum,
geometrical and functional analytic methods are used
simultaneously. Non-commutative geometry in particular is becoming
a useful tool in quantum field theories. This book, aimed at
advanced students and researchers, provides an introduction to
these ideas. Researchers will benefit particularly from the
extensive survey articles on models relating to quantum gravity,
string theory, and non-commutative geometry, as well as Connes'
approach to the standard model.
This is a review written by leading specialists on the state of the
art of computational methods in lattice field theory. They cover a
wide range: computer-assisted proofs, algorithms for computer
simulation of field theories, effective field theories, computer
studies of finite size effects, simulation with fast algorithms,
and computer applicationsin experimental particle physics. The book
addresses researchers, engineers, and graduate students in particle
physics.
The contributions presented in this volume address graduate
students as wellas researchers. They are intelligible and
pedagogically well-written reviewsof the most recent developments
in quantum field theory and both quantum gravity and quantum
supergravity. Alongside technical problems of field quantization
the reader will also find careful discussions of the conceptual
framework and of applications to quantum cosmology.
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