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High-Dimensional Optimization and Probability, Nikeghbali


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Цена: 11878.00р.
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Автор: Nikeghbali
Название:  High-Dimensional Optimization and Probability
ISBN: 9783031008313
Издательство: Springer
Классификация:

ISBN-10: 3031008316
Обложка/Формат: Hardback
Страницы: 417
Вес: 0.81 кг.
Дата издания: 19.08.2022
Серия: Springer Optimization and Its Applications
Язык: English
Издание: 1st ed. 2022
Иллюстрации: 33 illustrations, color; 7 illustrations, black and white; viii, 417 p. 40 illus., 33 illus. in color.; 33 illustrations, color; 7 illustrations, blac
Размер: 235 x 155
Читательская аудитория: Professional & vocational
Основная тема: Mathematics
Подзаголовок: With a View Towards Data Science
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: 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.
Дополнительное описание: Projection of a point onto a convex set via Charged Balls Method (E. Abbasov ).- Towards optimal sampling for learning sparse approximations in high dimensions (Adcock).- Recent Theoretical Advances in Non-Convex Optimization (Gasnikov).- Higher Order Emb



Data-driven science and engineering

Автор: Brunton, Steven L. (university Of Washington) Kutz
Название: Data-driven science and engineering
ISBN: 1009098489 ISBN-13(EAN): 9781009098489
Издательство: Cambridge Academ
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Цена: 7918.00 р.
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Описание: Data-driven discovery is revolutionizing how we model, predict, and control complex systems. This text integrates emerging machine learning and data science methods for engineering and science communities. Now with Python and MATLAB (R), new chapters on reinforcement learning and physics-informed machine learning, and supplementary videos and code.

Bayesian and High-Dimensional Global Optimization

Автор: Zhigljavsky, Anatoly Zilinskas, Antanas
Название: Bayesian and High-Dimensional Global Optimization
ISBN: 3030647110 ISBN-13(EAN): 9783030647117
Издательство: Springer
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Цена: 9083.00 р.
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Описание: Accessible to a variety of readers, this book is of interest to specialists, graduate students and researchers in mathematics, optimization, computer science, operations research, management science, engineering and other applied areas interested in solving optimization problems.

High-dimensional Covariance Estimation

Автор: Pourahmadi Mohsen
Название: High-dimensional Covariance Estimation
ISBN: 1118034295 ISBN-13(EAN): 9781118034293
Издательство: Wiley
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Цена: 12664.00 р.
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Описание: Methods for estimating sparse and large covariance matrices Covariance and correlation matrices play fundamental roles in every aspect of the analysis of multivariate data collected from a variety of fields including business and economics, health care, engineering, and environmental and physical sciences.

Introduction to High-Dimensional Statistics

Автор: Giraud
Название: Introduction to High-Dimensional Statistics
ISBN: 1482237946 ISBN-13(EAN): 9781482237948
Издательство: Taylor&Francis
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Цена: 9645.00 р.
Наличие на складе: Нет в наличии.

Описание: Ever-greater computing technologies have given rise to an exponentially growing volume of data. Today massive data sets (with potentially thousands of variables) play an important role in almost every branch of modern human activity, including networks, finance, and genetics. However, analyzing such data has presented a challenge for statisticians and data analysts and has required the development of new statistical methods capable of separating the signal from the noise. Introduction to High-Dimensional Statistics is a concise guide to state-of-the-art models, techniques, and approaches for handling high-dimensional data. The book is intended to expose the reader to the key concepts and ideas in the most simple settings possible while avoiding unnecessary technicalities. Offering a succinct presentation of the mathematical foundations of high-dimensional statistics, this highly accessible text: Describes the challenges related to the analysis of high-dimensional data Covers cutting-edge statistical methods including model selection, sparsity and the lasso, aggregation, and learning theory Provides detailed exercises at the end of every chapter with collaborative solutions on a wikisite Illustrates concepts with simple but clear practical examples Introduction to High-Dimensional Statistics is suitable for graduate students and researchers interested in discovering modern statistics for massive data. It can be used as a graduate text or for self-study.

High Dimensional Probability VII

Автор: Houdr?
Название: High Dimensional Probability VII
ISBN: 3319405179 ISBN-13(EAN): 9783319405179
Издательство: Springer
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Цена: 20263.00 р.
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Описание: This volume collects selected papers from the 7th High Dimensional Probability meeting held at the Institut d'?tudes Scientifiques de Carg?se (IESC) in Corsica, France.High Dimensional Probability (HDP) is an area of mathematics that includes the study of probability distributions and limit theorems in infinite-dimensional spaces such as Hilbert spaces and Banach spaces. The most remarkable feature of this area is that it has resulted in the creation of powerful new tools and perspectives, whose range of application has led to interactions with other subfields of mathematics, statistics, and computer science. These include random matrices, nonparametric statistics, empirical processes, statistical learning theory, concentration of measure phenomena, strong and weak approximations, functional estimation, combinatorial optimization, and random graphs.The contributions in this volume show that HDP theory continues to thrive and develop new tools, methods, techniques and perspectives to analyze random phenomena.

Stochastic Methods for Boundary Value Problems: Numerics for High-dimensional PDEs and Applications

Автор: Karl K. Sabelfeld, Nikolai A. Simonov
Название: Stochastic Methods for Boundary Value Problems: Numerics for High-dimensional PDEs and Applications
ISBN: 3110479060 ISBN-13(EAN): 9783110479065
Издательство: Walter de Gruyter
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Цена: 18586.00 р.
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Описание: This monograph is devoted to random walk based stochastic algorithms for solving high-dimensional boundary value problems of mathematical physics and chemistry. It includes Monte Carlo methods where the random walks live not only on the boundary, but also inside the domain. A variety of examples from capacitance calculations to electron dynamics in semiconductors are discussed to illustrate the viability of the approach.The book is written for mathematicians who work in the field of partial differential and integral equations, physicists and engineers dealing with computational methods and applied probability, for students and postgraduates studying mathematical physics and numerical mathematics. Contents: IntroductionRandom walk algorithms for solving integral equationsRandom walk-on-boundary algorithms for the Laplace equationWalk-on-boundary algorithms for the heat equationSpatial problems of elasticityVariants of the random walk on boundary for solving stationary potential problemsSplitting and survival probabilities in random walk methods and applicationsA random WOS-based KMC method for electron-hole recombinationsMonte Carlo methods for computing macromolecules properties and solving related problemsBibliography

High Dimensional Probability VI

Автор: Christian Houdr?; David M. Mason; Jan Rosi?ski; Jo
Название: High Dimensional Probability VI
ISBN: 3034807996 ISBN-13(EAN): 9783034807999
Издательство: Springer
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Цена: 16769.00 р.
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Описание: These include random matrix theory, nonparametric statistics, empirical process theory, statistical learning theory, concentration of measure phenomena, strong and weak approximations, distribution function estimation in high dimensions, combinatorial optimization, and random graph theory.

High Dimensional Probability III

Автор: Joergen Hoffmann-Joergensen; Michael B. Marcus; Jo
Название: High Dimensional Probability III
ISBN: 3764321873 ISBN-13(EAN): 9783764321871
Издательство: Springer
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Цена: 22359.00 р.
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Описание: The title High Dimensional Probability is used to describe the many tributaries of research on Gaussian processes and probability in Banach spaces that started in the early 1970s.

High Dimensional Probability II

Автор: Evarist Gin?; David M. Mason; Jon A. Wellner
Название: High Dimensional Probability II
ISBN: 1461271118 ISBN-13(EAN): 9781461271116
Издательство: Springer
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Цена: 20962.00 р.
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High Dimensional Probability III

Автор: Joergen Hoffmann-Joergensen; Michael B. Marcus; Jo
Название: High Dimensional Probability III
ISBN: 3034894236 ISBN-13(EAN): 9783034894234
Издательство: Springer
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Цена: 13974.00 р.
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Описание: The title High Dimensional Probability is used to describe the many tributaries of research on Gaussian processes and probability in Banach spaces that started in the early 1970s.

High Dimensional Probability VIII: The Oaxaca Volume

Автор: Gozlan Nathael, Latala Rafal, Lounici Karim
Название: High Dimensional Probability VIII: The Oaxaca Volume
ISBN: 3030263932 ISBN-13(EAN): 9783030263935
Издательство: Springer
Цена: 16070.00 р.
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Описание: This volume collects selected papers from the 8th High Dimensional Probability meeting held at Casa Matematica Oaxaca (CMO), Mexico. High Dimensional Probability (HDP) is an area of mathematics that includes the study of probability distributions and limit theorems in infinite-dimensional spaces such as Hilbert spaces and Banach spaces.

Sparse Graphical Modeling for High Dimensional Data

Автор: Liang, Faming
Название: Sparse Graphical Modeling for High Dimensional Data
ISBN: 0367183730 ISBN-13(EAN): 9780367183738
Издательство: Taylor&Francis
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Цена: 14086.00 р.
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