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Exploring the Riemann Zeta Function: 190 years from Riemann's Birth
presents a collection of chapters contributed by eminent experts
devoted to the Riemann Zeta Function, its generalizations, and
their various applications to several scientific disciplines,
including Analytic Number Theory, Harmonic Analysis, Complex
Analysis, Probability Theory, and related subjects. The book
focuses on both old and new results towards the solution of
long-standing problems as well as it features some key historical
remarks. The purpose of this volume is to present in a unified way
broad and deep areas of research in a self-contained manner. It
will be particularly useful for graduate courses and seminars as
well as it will make an excellent reference tool for graduate
students and researchers in Mathematics, Mathematical Physics,
Engineering and Cryptography.
The volume presents extensive research devoted to a broad spectrum
of mathematical analysis and probability theory. Subjects discussed
in this Work are those treated in the so-called Strasbourg-Zurich
Meetings. These meetings occur twice yearly in each of the cities,
Strasbourg and Zurich, venues of vibrant mathematical communication
and worldwide gatherings. The topical scope of the book includes
the study of monochromatic random waves defined for general
Riemannian manifolds, notions of entropy related to a compact
manifold of negative curvature, interacting electrons in a random
background, lp-cohomology (in degree one) of a graph and its
connections with other topics, limit operators for circular
ensembles, polyharmonic functions for finite graphs and Markov
chains, the ETH-Approach to Quantum Mechanics, 2-dimensional
quantum Yang-Mills theory, Gibbs measures of nonlinear Schroedinger
equations, interfaces in spectral asymptotics and nodal sets.
Contributions in this Work are composed by experts from the
international community, who have presented the state-of-the-art
research in the corresponding problems treated. This volume is
expected to be a valuable resource to both graduate students and
research mathematicians working in analysis, probability as well as
their interconnections and applications.
This volume presents extensive research devoted to a broad spectrum
of mathematics with emphasis on interdisciplinary aspects of
Optimization and Probability. Chapters also emphasize applications
to Data Science, a timely field with a high impact in our modern
society. The discussion presents modern, state-of-the-art, research
results and advances in areas including non-convex optimization,
decentralized distributed convex optimization, topics on
surrogate-based reduced dimension global optimization in process
systems engineering, the projection of a point onto a convex set,
optimal sampling for learning sparse approximations in high
dimensions, the split feasibility problem, higher order embeddings,
codifferentials and quasidifferentials of the expectation of
nonsmooth random integrands, adjoint circuit chains associated with
a random walk, analysis of the trade-off between sample size and
precision in truncated ordinary least squares, spatial deep
learning, efficient location-based tracking for IoT devices using
compressive sensing and machine learning techniques, and nonsmooth
mathematical programs with vanishing constraints in Banach spaces.
The book is a valuable source for graduate students as well as
researchers working on Optimization, Probability and their various
interconnections with a variety of other areas. Chapter 12 is
available open access under a Creative Commons Attribution 4.0
International License via link.springer.com.
This volume presents extensive research devoted to a broad spectrum
of mathematics with emphasis on interdisciplinary aspects of
Optimization and Probability. Chapters also emphasize applications
to Data Science, a timely field with a high impact in our modern
society. The discussion presents modern, state-of-the-art, research
results and advances in areas including non-convex optimization,
decentralized distributed convex optimization, topics on
surrogate-based reduced dimension global optimization in process
systems engineering, the projection of a point onto a convex set,
optimal sampling for learning sparse approximations in high
dimensions, the split feasibility problem, higher order embeddings,
codifferentials and quasidifferentials of the expectation of
nonsmooth random integrands, adjoint circuit chains associated with
a random walk, analysis of the trade-off between sample size and
precision in truncated ordinary least squares, spatial deep
learning, efficient location-based tracking for IoT devices using
compressive sensing and machine learning techniques, and nonsmooth
mathematical programs with vanishing constraints in Banach spaces.
The book is a valuable source for graduate students as well as
researchers working on Optimization, Probability and their various
interconnections with a variety of other areas. Chapter 12 is
available open access under a Creative Commons Attribution 4.0
International License via link.springer.com.
The canonical way to establish the central limit theorem for i.i.d.
random variables is to use characteristic functions and Levy's
continuity theorem. This monograph focuses on this characteristic
function approach and presents a renormalization theory called mod-
convergence. This type of convergence is a relatively new concept
with many deep ramifications, and has not previously been published
in a single accessible volume. The authors construct an extremely
flexible framework using this concept in order to study limit
theorems and large deviations for a number of probabilistic models
related to classical probability, combinatorics, non-commutative
random variables, as well as geometric and number-theoretical
objects. Intended for researchers in probability theory, the text
is carefully well-written and well-structured, containing a great
amount of detail and interesting examples.
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