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This book covers finite element methods for several typical
eigenvalues that arise from science and engineering. Both theory
and implementation are covered in depth at the graduate level. The
background for typical eigenvalue problems is included along with
functional analysis tools, finite element discretization methods,
convergence analysis, techniques for matrix evaluation problems,
and computer implementation. The book also presents new methods,
such as the discontinuous Galerkin method, and new problems, such
as the transmission eigenvalue problem.
Nonnegative matrices and positive operators are widely applied in
science, engineering, and technology. This book provides the basic
theory and several typical modern science and engineering
applications of nonnegative matrices and positive operators,
including the fundamental theory, methods, numerical analysis, and
applications in the Google search engine, computational molecular
dynamics, and wireless communications.Unique features of this book
include the combination of the theories of nonnegative matrices and
positive operators as well as the emphasis on applications of
nonnegative matrices in the numerical analysis of positive
operators, such as Markov operators and Frobenius-Perron operators
both of which play key roles in the statistical and stochastic
studies of dynamical systems.It can be used as a textbook for an
upper level undergraduate or beginning graduate course in advanced
matrix theory and/or positive operators as well as for an advanced
topics course in operator theory or ergodic theory. In addition, it
serves as a good reference for researchers in mathematical
sciences, physical sciences, and engineering.
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