Work with over 40 packages to draw inferences from complex data sets and find hidden patterns in raw unstructured data
This book is intended for professionals who are interested in data analysis using unsupervised learning techniques, as well as data analysts, statisticians, and data scientists seeking to learn to use R to apply data mining techniques. Knowledge of R, machine learning, and mathematics would help, but are not a strict requirement.
The R Project for Statistical Computing provides an excellent platform to tackle data processing, data manipulation, modeling, and presentation. The capabilities of this language, its freedom of use, and a very active community of users makes R one of the best tools to learn and implement unsupervised learning.
If you are new to R or want to learn about unsupervised learning, this book is for you. Packed with critical information, this book will guide you through a conceptual explanation and practical examples programmed directly into the R console.
Starting from the beginning, this book introduces you to unsupervised learning and provides a high-level introduction to the topic. We quickly move on to discuss the application of key concepts and techniques for exploratory data analysis. The book then teaches you to identify groups with the help of clustering methods or building association rules. Finally, it provides alternatives for the treatment of high-dimensional datasets, as well as using dimensionality reduction techniques and feature selection techniques.
By the end of this book, you will be able to implement unsupervised learning and various approaches associated with it in real-world projects.
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Erik Rodriguez Pacheco works as a manager in the business intelligence unit at Banco Improsa in San Jose, Costa Rica, where he holds 11 years of experience in the financial industry. He is currently a professor of the business intelligence specialization program at the Instituto Tecnologico de Costa Rica's continuing education programs. Erik is an enthusiast of new technologies, particularly those related to business intelligence, data mining, and data science. He holds a bachelor's degree in business administration from Universidad de Costa Rica, a specialization in business intelligence from the Instituto Tecnologico de Costa Rica, a specialization in data mining from Promidat (Programa Iberoamericano de Formacion en Mineria de Datos), and a specialization in business intelligence and data mining from Universidad del Bosque, Colombia. He is currently enrolled in an online specialization program in data science from Johns Hopkins University. He has served as the technical reviewer of R Data Visualization Cookbook and Data Manipulation with R - Second Edition, both from Packt Publishing. He can be reached at https://www.linkedin.com/in/erikrodriguezp.
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