Textual and Contextual Data Analysis
eBook - ePub

Textual and Contextual Data Analysis

A Multivariate Statistical Approach using R

  1. 227 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Textual and Contextual Data Analysis

A Multivariate Statistical Approach using R

About this book

Multidimensional statistical analysis of textual data is a powerful technique that enables researchers to uncover deeper insights into the context and meaning of documents. This book addresses the challenge of jointly analyzing textual and contextual data, presenting rigorous theoretical foundations alongside practical methodologies. By incorporating metadata and contextual information, readers can extract richer, more nuanced information from textual corpora, making this book an essential resource for statisticians, data scientists, and linguistics experts.

The book explores a wide range of textual data, from open-ended survey responses and political speeches to legal texts, literary works, and technical reports. It also examines the diverse contextual variables that shape these texts, such as sociodemographic characteristics, chronology, political affiliations, and external influences. Through real-world examples, readers will learn how to apply exploratory multivariate statistical methods to compare, characterize, and reveal the underlying structure of textual data. Each chapter builds on the previous one, offering a systematic approach to encoding, analyzing, and visualizing textual and contextual data. Topics include machine learning methods like latent semantic analysis and correspondence analysis, clustering techniques, restricted clustering defined by contextual data, and advanced visualization tools. The book also introduces methodologies for analyzing multilingual corpora and isolated texts, emphasizing the importance of discourse strategies and thematic contrasts.

This book is not only a guide to advanced statistical methods but also a practical toolkit for researchers working with diverse corpora. Whether analyzing legal databases, sensory evaluations, or political speeches, readers will find robust techniques to uncover patterns, relationships, and strategies within their data. By combining textual and contextual analysis, this book empowers readers to make meaningful comparisons and draw actionable conclusions.

KEY FEATURES:

• Comprehensive coverage of methods for jointly analyzing textual and contextual data.

• Practical applications to diverse corpora, including legal texts, political speeches, and sensory evaluations.

• Systematic comparison of machine learning methods like latent semantic analysis and correspondence analysis.

• Advanced visualization techniques, including interactive, 3D, and animated graphics.

• Methodologies for analyzing multilingual corpora and isolated texts, with a focus on discourse strategies.

Information

Year
2026
Print ISBN
9781032502267
Edition
1
eBook ISBN
9781040718346

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Contents
  7. Preface
  8. About the Authors
  9. List of Figures
  10. List of Tables
  11. 1 Consideration of additional information called contextual data
  12. 2 SVD-based methods in textual analysis. An overview
  13. 3 Clustering methods
  14. 4 Constrained clustering defined by the contextual data into the analysis
  15. 5 Textual data visualization
  16. 6 Textual data and contextual data playing a symmetric role
  17. 7 Correspondence analysis on a generalized aggregate lexical table
  18. 8 Structure and organization of a text
  19. 9 Extension of multivariate statistical methods to multilingual corpus
  20. Bibliography
  21. Index

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Yes, you can access Textual and Contextual Data Analysis by Mónica Bécue-Bertaut,Ramón Alvarez-Esteban in PDF and/or ePUB format, as well as other popular books in Mathematics & Natural Language Processing. We have over 1.5 million books available in our catalogue for you to explore.