Karthik Ramasubramanian Abhishek Singh Ramasubramanian Machine Learning Using R

Machine Learning Using R

von Karthik Ramasubramanian Abhishek Singh

With Time Series and Industry-Based Use Cases in R

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Beschreibung

Examine the latest technological advancements in building a scalable machine-learning model with big data using R. This second edition shows you how to work with a machine-learning algorithm and use it to build a ML model from raw data. You will see how to use R programming with TensorFlow, thus avoiding the effort of learning Python if you are only comfortable with R.

As in the first edition, the authors have kept the fine balance of theory and application of machine learning through various real-world use-cases which gives you a comprehensive collection of topics in machine learning. New chapters in this edition cover time series models and deep learning.

You will:


Examine the latest technological advancements in building a scalable machine-learning model with big data using R. This second edition shows you how to work with a machine-learning algorithm and use it to build a ML model from raw data. You will see how to use R programming with TensorFlow, thus avoiding the effort of learning Python if you are only comfortable with R.

As in the first edition, the authors have kept the fine balance of theory and application of machine learning through various real-world use-cases which gives you a comprehensive collection of topics in machine learning. New chapters in this edition cover time series models and deep learning.

What You'll Learn 

Who This Book is For

Data scientists, data science professionals, and researchers in academia who want to understand the nuances of machine-learning approaches/algorithms in practice using R.


A comprehensive guide for anybody who wants to understand the machine learning model building process from end to end Includes practical demonstrations of concepts in R Covers deep-learning models with Keras and TensorFlow using R

Autor*in

Karthik Ramasubramanian

Themen in »Machine Learning Using R«

Machine Learning Data Exploration Sampling Techniques Data Visualization Feature Engineering Machine Learning Models Scalable Machine Learning R Programming Source Code

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“The wide variety of concepts and the unique blend of theory and exercises recommend this book as a reliable starting point for researchers looking for a deeper understanding of machine learning approaches … . The book is suitable for a wide variety of backgrounds and skill sets, it is addressed to researchers from undergraduates to postgraduates and established researchers and from a wide range of interdisciplinary backgrounds such as computer science, mathematics, physics and biology.” (Irina Ioana Mohorianu, zbMATH 1423.68007, 2019)
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Details

ISBN: 9781484242148
Verlag: APRESS
Erscheinung: 13.12.2018

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