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Fundamentals of High-Dimensional Statistics: With Exercises and R Labs, Lederer Johannes


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Автор: Lederer Johannes
Название:  Fundamentals of High-Dimensional Statistics: With Exercises and R Labs
ISBN: 9783030737917
Издательство: Springer
Классификация:





ISBN-10: 3030737918
Обложка/Формат: Hardcover
Страницы: 427
Вес: 0.69 кг.
Дата издания: 25.09.2021
Серия: Springer texts in statistics
Язык: English
Издание: 1st ed. 2021
Иллюстрации: 21 illustrations, color; 13 illustrations, black and white; xiv, 355 p. 34 illus., 21 illus. in color.; 21 illustrations, color; 13 illustrations, bla
Размер: 23.39 x 15.60 x 2.24 cm
Читательская аудитория: Professional & vocational
Подзаголовок: Bilingual (english / filipino) (ingles / filipino) a newborn black & white baby book (high-contrast design & patterns) (panda, koala, sloth, monkey, kangaroo, giraffe, elephant, lion, tiger, chameleon, shark, dolphin, turtle, penguin, polar bear, and
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: This textbook provides a step-by-step introduction to the tools and principles of high-dimensional statistics. The book covers the theory and practice of high-dimensional linear regression, graphical models, and inference, ensuring readers have a smooth start in the field. It also offers suggestions for further reading.


Statistics for High Dimensional Data

Автор: B?hlmann
Название: Statistics for High Dimensional Data
ISBN: 3642201911 ISBN-13(EAN): 9783642201912
Издательство: Springer
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Цена: 16769.00 р.
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Описание: This valuable compendium of statistical methods features a unique combination of methodology, theory, algorithms and applications. It covers recently developed approaches to handling large and complex data sets, including the Lasso and boosting methods.

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

Analysis of Multivariate and High-Dimensional Data

Автор: Koch
Название: Analysis of Multivariate and High-Dimensional Data
ISBN: 0521887933 ISBN-13(EAN): 9780521887939
Издательство: Cambridge Academ
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Цена: 10613.00 р.
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Описание: `Big data` poses challenges that require both classical multivariate methods and modern machine-learning techniques. This coherent treatment integrates theory with data analysis, visualisation and interpretation of the analysis. Problems, data sets and MATLAB (R) code complete the package. It is suitable for master`s/graduate students in statistics and working scientists in data-rich disciplines.

Functional and High-Dimensional Statistics and Related Fields

Автор: Aneiros Germбn, Horovб Ivana, Huskovб Marie
Название: Functional and High-Dimensional Statistics and Related Fields
ISBN: 3030477584 ISBN-13(EAN): 9783030477585
Издательство: Springer
Цена: 20962.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: Preface.- List of Contributors .- 1 An introduction to the (postponed) 5th edition of the International Workshop on Functional and Operatorial Statistics.- 2 Analysis of Telecom Italia Mobile Phone Data by Space-time Regression with Differential Regularization.- 3 Some Numerical Test on the Convergence Rates of Regression with Differential Regularization.- 4 Learning with Signatures.- 5 About the Complexity Function in Small-ball Probability Factorization.- 6 Principal Components Analysis of a Cyclostationary Random Function.- 7 Level Set and Density Estimation on Manifolds.- 8 Pseudo-metrics as Interesting Tool in Nonparametric Functional Regression.- 9 Testing a Specification Form in Single Functional Index Model.- 10 A New Method for Ordering Functional Data and its Application to Diagnostic Test.- 11 A Functional Data Analysis Approach to the Estimation of Densities over Complex Regions.- 12 A Conformal Approach for Distribution-free Prediction of Functional Data.- 13 G-Lasso Network Analysis for Functional Data.- 14 Modelling Functional Data with High-dimensional Error Structure.- 15 Goodness-of-fit Tests for Functional Linear Models Based on Integrated Projections.- 16 From High-dimensional to Functional Data: Stringing Via Manifold Learning.- 17 Functional Two-sample Tests Based on Empirical Characteristic Functionals.- 18 Some Remarks on the Nelson-Siegel Model.- 19 Modeling the Effect of Recurrent Events on Time-to-event Processes by Means of Functional Data.- 20 On Robust Training of Regression Neural Networks.- 21 Simultaneous Inference for Function-valued Parameters: a Fast and Fair Approach.- 22 Single Functional Index Model under Responses MAR and Dependent Observations.- 23 O2S2 for the Geodata Deluge .- 24 Riemannian Distances between Covariance Operators and Gaussian Processes.- 25 Depth in Infinite-dimensional Spaces.- 26 Variable Selection in Semiparametric Bi-functional Models.- 27 Local Inference for Functional Data Controlling the Functional False Discovery Rate.- 28 Optimum Scale Selection for 3D Point Cloud Classification through Distance Correlation.- 29 Generalized Functional Partially Linear Single-index Models.- 30 Functional Outlier Detection through Probabilistic Modelling.- 31 Topological Object Data Analysis Methods with an Application to Medical Imaging .- 32 Distribution-free Pointwise Adjusted %-values for Functional Hypotheses.- Authors Index.

Fundamentals of the Three-Dimensional Theory of Stability of Deformable Bodies

Автор: M. Kashtalian; A.N. Guz
Название: Fundamentals of the Three-Dimensional Theory of Stability of Deformable Bodies
ISBN: 3662219239 ISBN-13(EAN): 9783662219232
Издательство: Springer
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Цена: 16979.00 р.
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Statistics for Beginners: Fundamentals Of Probability And Statistics For Data Science And Business Applications, Made Easy For You

Автор: Foster Matt
Название: Statistics for Beginners: Fundamentals Of Probability And Statistics For Data Science And Business Applications, Made Easy For You
ISBN: 1801091935 ISBN-13(EAN): 9781801091930
Издательство: Неизвестно
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Цена: 3717.00 р.
Наличие на складе: Нет в наличии.

Introduction to High-Dimensional Statistics

Автор: Giraud Christophe
Название: Introduction to High-Dimensional Statistics
ISBN: 0367716224 ISBN-13(EAN): 9780367716226
Издательство: Taylor&Francis
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Цена: 12554.00 р.
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Описание: This book preserves the philosophy of the first edition: to be a concise guide for students and researchers discovering the area and interested in the mathematics involved. The main concepts and ideas are presented in simple settings, avoiding thereby unessential technicalities.

Functional and High-Dimensional Statistics and Related Fields

Автор: Aneiros Germбn, Horovб Ivana, Huskovб Marie
Название: Functional and High-Dimensional Statistics and Related Fields
ISBN: 303047755X ISBN-13(EAN): 9783030477554
Издательство: Springer
Рейтинг:
Цена: 20962.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: Preface.- List of Contributors .- 1 An introduction to the (postponed) 5th edition of the International Workshop on Functional and Operatorial Statistics.- 2 Analysis of Telecom Italia Mobile Phone Data by Space-time Regression with Differential Regularization.- 3 Some Numerical Test on the Convergence Rates of Regression with Differential Regularization.- 4 Learning with Signatures.- 5 About the Complexity Function in Small-ball Probability Factorization.- 6 Principal Components Analysis of a Cyclostationary Random Function.- 7 Level Set and Density Estimation on Manifolds.- 8 Pseudo-metrics as Interesting Tool in Nonparametric Functional Regression.- 9 Testing a Specification Form in Single Functional Index Model.- 10 A New Method for Ordering Functional Data and its Application to Diagnostic Test.- 11 A Functional Data Analysis Approach to the Estimation of Densities over Complex Regions.- 12 A Conformal Approach for Distribution-free Prediction of Functional Data.- 13 G-Lasso Network Analysis for Functional Data.- 14 Modelling Functional Data with High-dimensional Error Structure.- 15 Goodness-of-fit Tests for Functional Linear Models Based on Integrated Projections.- 16 From High-dimensional to Functional Data: Stringing Via Manifold Learning.- 17 Functional Two-sample Tests Based on Empirical Characteristic Functionals.- 18 Some Remarks on the Nelson-Siegel Model.- 19 Modeling the Effect of Recurrent Events on Time-to-event Processes by Means of Functional Data.- 20 On Robust Training of Regression Neural Networks.- 21 Simultaneous Inference for Function-valued Parameters: a Fast and Fair Approach.- 22 Single Functional Index Model under Responses MAR and Dependent Observations.- 23 O2S2 for the Geodata Deluge .- 24 Riemannian Distances between Covariance Operators and Gaussian Processes.- 25 Depth in Infinite-dimensional Spaces.- 26 Variable Selection in Semiparametric Bi-functional Models.- 27 Local Inference for Functional Data Controlling the Functional False Discovery Rate.- 28 Optimum Scale Selection for 3D Point Cloud Classification through Distance Correlation.- 29 Generalized Functional Partially Linear Single-index Models.- 30 Functional Outlier Detection through Probabilistic Modelling.- 31 Topological Object Data Analysis Methods with an Application to Medical Imaging .- 32 Distribution-free Pointwise Adjusted %-values for Functional Hypotheses.- Authors Index.

Introduction to High-Dimensional Statistics

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

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.

Statistics for High-Dimensional Data

Автор: Peter B?hlmann; Sara van de Geer
Название: Statistics for High-Dimensional Data
ISBN: 3642268579 ISBN-13(EAN): 9783642268571
Издательство: Springer
Рейтинг:
Цена: 16769.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This valuable compendium of statistical methods features a unique combination of methodology, theory, algorithms and applications. It covers recently developed approaches to handling large and complex data sets, including the Lasso and boosting methods.

Bringing Innovative Robotic Technologies from Research Labs to Industrial End-Users: The Experience of the European Robotics Challenges

Автор: Caccavale Fabrizio, Ott Christian, Winkler Bernd
Название: Bringing Innovative Robotic Technologies from Research Labs to Industrial End-Users: The Experience of the European Robotics Challenges
ISBN: 3030345092 ISBN-13(EAN): 9783030345099
Издательство: Springer
Цена: 20962.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book presents the main achievements of the EuRoC (European Robotics Challenges) project, which ran from 1st January,2014 to 30th June 2018 and was funded by the European Union under the 7th Framework Programme.

Bringing Innovative Robotic Technologies from Research Labs to Industrial End-Users: The Experience of the European Robotics Challenges

Автор: Caccavale Fabrizio, Ott Christian, Winkler Bernd
Название: Bringing Innovative Robotic Technologies from Research Labs to Industrial End-Users: The Experience of the European Robotics Challenges
ISBN: 3030345068 ISBN-13(EAN): 9783030345068
Издательство: Springer
Рейтинг:
Цена: 20962.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book presents the main achievements of the EuRoC (European Robotics Challenges) project, which ran from 1st January,2014 to 30th June 2018 and was funded by the European Union under the 7th Framework Programme.


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