Machine Learning with R
Expert techniques for predictive modeling
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ISBN
9781788295864
Bindwijze
Paperback
Taal
Engels
Auteur
Uitgeverij
BPOQ
Jaar van uitgifte
2019
Aantal pagina's
458
Waar gaat het over?
Brett Lantz teaches you how to uncover key insights and make new predictions with this hands-on, practical guide to machine learning with R. This third edition is for experienced R users and beginners. The book is fully updated to R 3.6, featuring newer and better libraries, advice on ethical and bias issues, and an introduction to deep learning.
Solve real-world data problems with R and machine learning Key Features
- Third edition of the bestselling, widely acclaimed R machine learning book, updated and improved for R 3.6 and beyond
- Harness the power of R to build flexible, effective, and transparent machine learning models
- Learn quickly with a clear, hands-on guide by experienced machine learning teacher and practitioner, Brett Lantz
- Discover the origins of machine learning and how exactly a computer learns by example
- Prepare your data for machine learning work with the R programming language
- Classify important outcomes using nearest neighbor and Bayesian methods
- Predict future events using decision trees, rules, and support vector machines
- Forecast numeric data and estimate financial values using regression methods
- Model complex processes with artificial neural networks — the basis of deep learning
- Avoid bias in machine learning models
- Evaluate your models and improve their performance
- Connect R to SQL databases and emerging big data technologies such as Spark, H2O, and TensorFlow
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