Wolfgang Karl Härdle Léopold Simar Matthias R. Fengler Härdle Applied Multivariate Statistical Analysis

Applied Multivariate Statistical Analysis

von Wolfgang Karl Härdle Léopold Simar Matthias R. Fengler

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Beschreibung

Now in its sixth edition, this textbook presents the tools and concepts used in multivariate data analysis in a style accessible for non-mathematicians and practitioners. Each chapter features hands-on exercises that showcase applications across various fields of multivariate data analysis. These exercises utilize high-dimensional to ultra-high-dimensional data, reflecting real-world challenges in big data analysis.

For this new edition, the book has been updated and revised and now includes new chapters on modern machine learning techniques for dimension reduction and data visualization, namely locally linear embedding, t-distributed stochastic neighborhood embedding, and uniform manifold approximation and projection, which overcome the shortcomings of traditional visualization and dimension reduction techniques.

Solutions to the book’s exercises are supplemented by R and MATLAB or SAS computer code and are available online on the Quantlet and Quantinar platforms. Practical exercises from this book and their solutions can also be found in the accompanying Springer book by W.K. Härdle and Z. Hlávka: Multivariate Statistics - Exercises and Solutions.


Now in its sixth edition, this textbook presents the tools and concepts used in multivariate data analysis in a style accessible for non-mathematicians and practitioners. Each chapter features hands-on exercises that showcase applications across various fields of multivariate data analysis. These exercises utilize high-dimensional to ultra-high-dimensional data, reflecting real-world challenges in big data analysis.

For this new edition, the book has been updated and revised and now includes new chapters on modern machine learning techniques for dimension reduction and data visualization, namely locally linear embedding, t-distributed stochastic neighborhood embedding, and uniform manifold approximation and projection, which overcome the shortcomings of traditional visualization and dimension reduction techniques.

Solutions to the book’s exercises are supplemented by R and MATLAB or SAS computer code and are available online on the Quantlet and Quantinar platforms. Practical exercises from this book and their solutions can also be found in the accompanying Springer book by W.K. Härdle and Z. Hlávka: Multivariate Statistics - Exercises and Solutions.


Provides a comprehensive treatment of multivariate statistical analysis, including approaches to high-dimensional data Presents modern machine learning methods for dimension reduction and data visualization Features numerous examples, exercises and supplementary computer code, equipping readers to reproduce all computations

Autor*in

Wolfgang Karl Härdle

Themen in »Applied Multivariate Statistical Analysis«

Multivariate Data Analysis Multivariate Statistics Multivariate Analysis Dimension Reduction Machine Learning Techniques Variable Selection Multivariate Classification Cluster Analysis Discriminant Analysis Conjoint Measurement Analysis Data Visualization Hypothesis Testing Big Data Analysis Computationally Intensive Techniques Lasso and Elastic Net

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Details

ISBN: 9783031638336
Verlag: Springer International Publishing
Erscheinung: 28.09.2024

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