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This book explores four guiding themes - reduced order modelling,
high dimensional problems, efficient algorithms, and applications -
by reviewing recent algorithmic and mathematical advances and the
development of new research directions for uncertainty
quantification in the context of partial differential equations
with random inputs. Highlighting the most promising approaches for
(near-) future improvements in the way uncertainty quantification
problems in the partial differential equation setting are solved,
and gathering contributions by leading international experts, the
book's content will impact the scientific, engineering, financial,
economic, environmental, social, and commercial sectors.
This book explores four guiding themes - reduced order modelling,
high dimensional problems, efficient algorithms, and applications -
by reviewing recent algorithmic and mathematical advances and the
development of new research directions for uncertainty
quantification in the context of partial differential equations
with random inputs. Highlighting the most promising approaches for
(near-) future improvements in the way uncertainty quantification
problems in the partial differential equation setting are solved,
and gathering contributions by leading international experts, the
book's content will impact the scientific, engineering, financial,
economic, environmental, social, and commercial sectors.
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