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Inverse problems and optimal design have come of age as a
consequence of the availability of better, more accurate, and more
efficient simulation packages. Many of these simulators, which can
run on small workstations, can capture the complicated behavior of
the physical systems they are modeling, and have become commonplace
tools in engineering and science. There is a great desire to use
them as part of a process by which measured field data are analyzed
or by which design of a product is automated. A major obstacle in
doing precisely this is that one is ultimately confronted with a
large-scale optimization problem. This volume contains expository
articles on both inverse problems and design problems formulated as
optimization. Each paper describes the physical problem in some
detail and is meant to be accessible to researchers in optimization
as well as those who work in applied areas where optimization is a
key tool. What emerges in the presentations is that there are
features about the problem that must be taken into account in
posing the objective function, and in choosing an optimization
strategy. In particular there are certain structures peculiar to
the problems that deserve special treatment, and there is ample
opportunity for parallel computation. THIS IS BACK COVER TEXT
Inverse problems and optimal design have come of age as a
consequence of the availability of better, more accurate, and more
efficient, simulation packages. The problem of determining the
parameters of a physical system from
With contributions by specialists in optimization and practitioners in the fields of aerospace engineering, chemical engineering, and fluid and solid mechanics, the major themes include an assessment of the state of the art in optimization algorithms as well as challenging applications in design and control, in the areas of process engineering and systems with partial differential equation models.
This volume covers some of the topics that are related to the
rapidly growing field of biomedical informatics. In June 11-12,
2010 a workshop entitled 'Optimization and Data Analysis in
Biomedical Informatics' was organized at The Fields Institute.
Following this event invited contributions were gathered based on
the talks presented at the workshop, and additional invited
chapters were chosen from world's leading experts. In this
publication, the authors share their expertise in the form of
state-of-the-art research and review chapters, bringing together
researchers from different disciplines and emphasizing the value of
mathematical methods in the areas of clinical sciences. This work
is targeted to applied mathematicians, computer scientists,
industrial engineers, and clinical scientists who are interested in
exploring emerging and fascinating interdisciplinary topics of
research. It is designed to further stimulate and enhance fruitful
collaborations between scientists from different disciplines.
This volume covers some of the topics that are related to the
rapidly growing field of biomedical informatics. In June 11-12,
2010 a workshop entitled 'Optimization and Data Analysis in
Biomedical Informatics' was organized at The Fields Institute.
Following this event invited contributions were gathered based on
the talks presented at the workshop, and additional invited
chapters were chosen from world's leading experts. In this
publication, the authors share their expertise in the form of
state-of-the-art research and review chapters, bringing together
researchers from different disciplines and emphasizing the value of
mathematical methods in the areas of clinical sciences. This work
is targeted to applied mathematicians, computer scientists,
industrial engineers, and clinical scientists who are interested in
exploring emerging and fascinating interdisciplinary topics of
research. It is designed to further stimulate and enhance fruitful
collaborations between scientists from different disciplines.
With contributions by specialists in optimization and practitioners
in the fields of aerospace engineering, chemical engineering, and
fluid and solid mechanics, the major themes include an assessment
of the state of the art in optimization algorithms as well as
challenging applications in design and control, in the areas of
process engineering and systems with partial differential equation
models.
With contributions by specialists in optimization and practitioners
in the fields of aerospace engineering, chemical engineering, and
fluid and solid mechanics, the major themes include an assessment
of the state of the art in optimization algorithms as well as
challenging applications in design and control, in the areas of
process engineering and systems with partial differential equation
models.
The calculation of partial derivatives is a fundamental need in
scientific computing. Automatic differentiation (AD) can be applied
straightforwardly to obtain all necessary partial derivatives
(usually first and, possibly, second derivatives) regardless of a
code's complexity. However, the space and time efficiency of AD can
be dramatically improved - sometimes transforming a problem from
intractable to highly feasible - if inherent problem structure is
used to apply AD in a judicious manner. This book discusses the
efficient use of AD to solve real problems, especially
multidimensional zero-finding and optimization, in the MATLAB
environment. This book is concerned with the determination of the
first and second derivatives in the context of solving scientific
computing problems with an emphasis on optimization and solutions
to nonlinear systems. The authors focus on the application rather
than the implementation of AD, solve real nonlinear problems with
high performance by exploiting the problem structure in the
application of AD, and provide many easy to understand
applications, examples, and MATLAB templates.
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