Multivariate Statistics and Machine Learning

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A01=Daniel J. Denis
advanced multivariate data analysis
Author_Daniel J. Denis
Category=GPS
Category=JMB
Category=KCH
Category=UYQ
Category=UYQM
cluster algorithms
dimensionality reduction
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eq_business-finance-law
eq_computing
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eq_new_release
eq_nobargain
eq_non-fiction
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Machine Learning
multivariate
Multivariate statistics
Python
R
regression modeling
statistical learning theory
structural equation modeling
supervised classification

Product details

  • ISBN 9781032454276
  • Weight: 1280g
  • Dimensions: 178 x 254mm
  • Publication Date: 28 Dec 2025
  • Publisher: Taylor & Francis Ltd
  • Publication City/Country: GB
  • Product Form: Hardback
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Multivariate Statistics and Machine Learning is a hands-on textbook providing an in-depth guide to multivariate statistics and select machine learning topics using R and Python software.

The book offers a theoretical orientation to the concepts required to introduce or review statistical and machine learning topics, and in addition to teaching the techniques, instructs readers on how to perform, implement, and interpret code and analyses in R and Python in multivariate, data science, and machine learning domains. For readers wishing for additional theory, numerous references throughout the textbook are provided where deeper and less “hands on” works can be pursued.

With its unique breadth of topics covering a wide range of modern quantitative techniques, user-friendliness, and quality of expository writing, Multivariate Statistics and Machine Learning will serve as a key and unifying introductory textbook for students in the social, natural, statistical, and computational sciences for years to come.

Daniel J. Denis, Ph.D., is Professor of Quantitative Psychology at the University of Montana, U.S.A, where he has taught applied statistics courses since 2004. He is author of Applied Univariate, Bivariate, and Multivariate Statistics and Applied Univariate, Bivariate, and Multivariate Statistics Using Python.

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