Analysis of Variance for High-Dimensional Data
eBook - PDF

Analysis of Variance for High-Dimensional Data

Applications in Life, Food, and Chemical Sciences

  1. 339 pages
  2. English
  3. PDF
  4. Available on iOS & Android
eBook - PDF

Analysis of Variance for High-Dimensional Data

Applications in Life, Food, and Chemical Sciences

About this book

Overview of methods for analyzing high-dimensional experimental data, including theory, methodologies, and applications

Analysis of Variance for High-Dimensional Data summarizes all the methods to analyze high-dimensional data that are obtained through applying an experimental design in the life, food, and chemical sciences, especially those developed in recent years.

Written by international experts who lead development in the field, Analysis of Variance for High-Dimensional Data includes information on:

  • Basic and established theories on linear models from a mathematical and statistical perspective
  • Available methods and their mutual relationships, including coverage of ASCA, APCA, PC-ANOVA, ASCA+, LiMM-PCA and RM-ASCA+, and PERMANOVA, as well as various alternative methods and extensions
  • Applications in metabolomics, microbiome, gene expression, proteomics, food science, sensory science, and chemistry
  • Commercially available and open-source software for application of these methods

Analysis of Variance for High-Dimensional Data is an essential reference for practitioners involved in data analysis in the natural sciences, including professionals working in chemometrics, bioinformatics, data science, statistics, and machine learning. The book is valuable for developers of new methods in high dimensional data analysis.

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Yes, you can access Analysis of Variance for High-Dimensional Data by Age K. Smilde,Federico Marini,Johan A. Westerhuis,Kristian Hovde Liland in PDF and/or ePUB format, as well as other popular books in Physical Sciences & Analytic Chemistry. We have over one million books available in our catalogue for you to explore.

Information

Publisher
Wiley
Year
2025
Print ISBN
9781394211210
eBook ISBN
9781394211227

Table of contents

  1. Cover
  2. Title Page
  3. Copyright
  4. Contents
  5. About the Authors
  6. Foreword
  7. Preface
  8. Chapter 1 Introduction
  9. Chapter 2 Basic Theory and Concepts
  10. Chapter 3 Linear Models
  11. Chapter 4 ASCA and Related Methods
  12. Chapter 5 Alternative Methods
  13. Chapter 6 Distance‐based Methods
  14. Chapter 7 Reviews and Reflections
  15. Chapter 8 Software
  16. References
  17. Index
  18. EULA