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R Machine Learning Projects - Dr. Sunil Kumar Chinnamgari

R Machine Learning Projects

Implement supervised, unsupervised, and reinforcement learning techniques using R 3.5
Buch | Softcover
334 Seiten
2019
Packt Publishing Limited (Verlag)
9781789807943 (ISBN)
CHF 54,10 inkl. MwSt
The purpose of the book is to help a machine learning practitioner gets hands-on experience in working with real-world data and apply modern machine learning algorithms. You will learn to implement each algorithm to a specific industry problem. It covers projects involving both supervised as well as unsupervised learning approaches.
Master a range of machine learning domains with real-world projects using TensorFlow for R, H2O, MXNet, and more

Key Features

Master machine learning, deep learning, and predictive modeling concepts in R 3.5
Build intelligent end-to-end projects for finance, retail, social media, and a variety of domains
Implement smart cognitive models with helpful tips and best practices

Book DescriptionR is one of the most popular languages when it comes to performing computational statistics (statistical computing) easily and exploring the mathematical side of machine learning. With this book, you will leverage the R ecosystem to build efficient machine learning applications that carry out intelligent tasks within your organization.

This book will help you test your knowledge and skills, guiding you on how to build easily through to complex machine learning projects. You will first learn how to build powerful machine learning models with ensembles to predict employee attrition. Next, you’ll implement a joke recommendation engine and learn how to perform sentiment analysis on Amazon reviews. You’ll also explore different clustering techniques to segment customers using wholesale data. In addition to this, the book will get you acquainted with credit card fraud detection using autoencoders, and reinforcement learning to make predictions and win on a casino slot machine.

By the end of the book, you will be equipped to confidently perform complex tasks to build research and commercial projects for automated operations.

What you will learn

Explore deep neural networks and various frameworks that can be used in R
Develop a joke recommendation engine to recommend jokes that match users’ tastes
Create powerful ML models with ensembles to predict employee attrition
Build autoencoders for credit card fraud detection
Work with image recognition and convolutional neural networks
Make predictions for casino slot machine using reinforcement learning
Implement NLP techniques for sentiment analysis and customer segmentation

Who this book is forIf you’re a data analyst, data scientist, or machine learning developer who wants to master machine learning concepts using R by building real-world projects, this is the book for you. Each project will help you test your skills in implementing machine learning algorithms and techniques. A basic understanding of machine learning and working knowledge of R programming is necessary to get the most out of this book.

Dr. Sunil Kumar Chinnamgari has a PhD in computer science (specializing in machine learning and natural language processing). He is an AI researcher with more than 14 years of industry experience. Currently, he works in the capacity of a lead data scientist with a US financial giant. He has published several research papers in Scopus and IEEE journals and is a frequent speaker at various meet-ups. He is an avid coder and has won multiple hackathons. In his spare time, Sunil likes to teach, travel, and spend time with family.

Table of Contents

Exploring the Machine Learning Landscape
Predicting Employees Attrition using Ensemble models
Implementing a Jokes Recommendation Engine
Sentiment Analysis of Amazon Reviews with NLP
Customer Segmentation Using Wholesale Data
Image Recognition using Deep Neural Network
Credit Card Fraud Detection Using Autoencoders
Automatic Prose Generation with Recurrent Neural Networks
Winning the Casino Slot Machine with Reinforcement Learning
Appendix

Erscheinungsdatum
Verlagsort Birmingham
Sprache englisch
Maße 75 x 93 mm
Themenwelt Informatik Theorie / Studium Künstliche Intelligenz / Robotik
ISBN-13 9781789807943 / 9781789807943
Zustand Neuware
Informationen gemäß Produktsicherheitsverordnung (GPSR)
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