Time Series Clustering and Classification

Time Series Clustering and Classification  (Paperback, Elizabeth Ann Maharaj, Pierpaolo D'Urso, Jorge Caiado)

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Highlights
  • Binding: Paperback
  • Publisher: Routledge
  • ISBN: 9781032032047
  • Edition: 1, 2021
  • Pages: 246
Description
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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Specifications
Book Details
Publication Year
  • 2021
Table of Contents
  • Introduction Time Series Features and Models Traditional cluster analysis Fuzzy clustering Observation-based clustering Feature-based clustering Model-based clustering Other time series clustering approaches Feature-based classification approaches Other time series classification approaches Software and Data Sets
Contributors
Author Info
  • Biography Elizabeth Ann Maharaj is an Associate Professor in the Department of Econometrics and Business Statistics at Monash University, Australia. She has a Ph.D. from Monash University on the Pattern Recognition of Time Series. Ann is an elected member of the International Statistical Institute (ISI), a member of the International Association of Statistical Computing (IASC) and of the Statistical Society of Australia (SSA). She is also an accredited statistician with the SSA. Ann’s main research interests are in time series classification, wavelets analysis, fuzzy classification and interval time series analysis. She has also worked on research projects in climatology, environmental science, labour markets, human mobility and finance.
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