Time Series Clustering and Classification
eBook - ePub

Time Series Clustering and Classification

  1. 228 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Time Series Clustering and Classification

Book details
Table of contents
Citations

About This Book

The beginning of the age of artificial intelligence and machine learning has created new challenges and opportunities for data analysts, statisticians, mathematicians, econometricians, computer scientists and many others. At the root of these techniques are algorithms and methods for clustering and classifying different types of large datasets, including time series data.

Time Series Clustering and Classification includes relevant developments on observation-based, feature-based and model-based traditional and fuzzy clustering methods, feature-based and model-based classification methods, and machine learning methods. It presents a broad and self-contained overview of techniques for both researchers and students.

Features

  • Provides an overview of the methods and applications of pattern recognition of time series


  • Covers a wide range of techniques, including unsupervised and supervised approaches


  • Includes a range of real examples from medicine, finance, environmental science, and more


  • R and MATLAB code, and relevant data sets are available on a supplementary website

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Yes, you can access Time Series Clustering and Classification by Elizabeth Ann Maharaj, Pierpaolo D'Urso, Jorge Caiado in PDF and/or ePUB format, as well as other popular books in Mathematics & Probability & Statistics. We have over one million books available in our catalogue for you to explore.

Information

Year
2019
ISBN
9780429603303
Edition
1

Table of contents

  1. Cover
  2. Half Title
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Dedication
  7. Contents
  8. Preface
  9. Authors
  10. 1. Introduction
  11. 2. Time series features and models
  12. Part I: Unsupervised Approaches: Clustering Techniques for Time Series
  13. Part II: Supervised Approaches: Classification Techniques for Time Series
  14. Part III: Software and Data Sets
  15. Bibliography
  16. Subject index