R for Business Analytics
Autor A. Ohrien Limba Engleză Hardback – 14 sep 2012
This book is aimed at business analysts with basic programming skills for using R for Business Analytics. Note the scope of the book is neither statistical theory nor graduate level research for statistics, but rather it is for business analytics practitioners. Business analytics (BA) refers to the field of exploration and investigation of data generated by businesses. Business Intelligence (BI) is the seamless dissemination of information through the organization, which primarily involves business metrics both past and current for the use of decision support in businesses. Data Mining (DM) is the process of discovering new patterns from large data using algorithms and statistical methods. To differentiate between the three, BI is mostly current reports, BA is models to predict and strategize and DM matches patterns in big data. The R statistical software is the fastest growing analytics platform in the world, and is established in both academia and corporations for robustness, reliability and accuracy.
The book utilizes Albert Einstein’s famous remarks on making things as simple as possible, but no simpler. This book will blow the last remaining doubts in your mind about using R in your business environment. Even non-technical users will enjoy the easy-to-use examples. The interviews with creators and corporate users of R make the book very readable. The author firmly believes Isaac Asimov was a better writer in spreading science than any textbook or journal author.
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Specificații
ISBN-13: 9781461443421
ISBN-10: 1461443423
Pagini: 332
Ilustrații: XVIII, 312 p.
Dimensiuni: 155 x 235 x 22 mm
Greutate: 0.66 kg
Ediția:2013
Editura: Springer
Colecția Springer
Locul publicării:New York, NY, United States
ISBN-10: 1461443423
Pagini: 332
Ilustrații: XVIII, 312 p.
Dimensiuni: 155 x 235 x 22 mm
Greutate: 0.66 kg
Ediția:2013
Editura: Springer
Colecția Springer
Locul publicării:New York, NY, United States
Public țintă
Professional/practitionerCuprins
Why R.- R Infrastructure.- R Interfaces.- Manipulating Data.- Exploring Data.- Building Regression Models.- Data Mining using R.- Clustering and Data Segmentation.- Forecasting and Time-Series Models.- Data Export and Output.- Optimizing your R Coding.- Additional Training Literature.- Appendix.
Recenzii
From the book reviews:
“This book focuses on how to use R software for basic statistics in a business context. … The use of GUIs in this book exposes the reader to some of the power of R for business planning and decision making in a user-friendly environment. … The content of this book is light from a statistical point of view, but does serve to provide a nice overview of GUIs that are helpful for anyone doing business analytics in R.” (Roger M. Sauter, Technometrics, Vol. 55 (3), August, 2013)
“I am enjoying reading this book. … After reading this book I feel more confident about getting data into R. … Each chapter has a summary at the end listing all the packages and functions used in the chapter. … a very useful book on business analytics.” (Cats and Dogs with Data, maryannedata.wordpress.com, August, 2013)
"If you are a beginner like me and want to learn everything about R and don’t know where to begin, then this book will do you wonders. It has everything youneed to get started. This book will be your companion and will not disappoint you." (The R Blabber, May, 2013)
“The book has something for both beginning R users (who may be experienced in data science, but want to start learning how to apply R towards their field), and experienced R users … . the book has an extremely broad coverage of R’s many packages that can be used towards business data analysis, with a very hands on approach that can help many new users quickly come up to speed and running on utilizing R’s powerful capabilities.” (Intelligent Trading Tech, October, 2012)
“This book focuses on how to use R software for basic statistics in a business context. … The use of GUIs in this book exposes the reader to some of the power of R for business planning and decision making in a user-friendly environment. … The content of this book is light from a statistical point of view, but does serve to provide a nice overview of GUIs that are helpful for anyone doing business analytics in R.” (Roger M. Sauter, Technometrics, Vol. 55 (3), August, 2013)
“I am enjoying reading this book. … After reading this book I feel more confident about getting data into R. … Each chapter has a summary at the end listing all the packages and functions used in the chapter. … a very useful book on business analytics.” (Cats and Dogs with Data, maryannedata.wordpress.com, August, 2013)
"If you are a beginner like me and want to learn everything about R and don’t know where to begin, then this book will do you wonders. It has everything youneed to get started. This book will be your companion and will not disappoint you." (The R Blabber, May, 2013)
“The book has something for both beginning R users (who may be experienced in data science, but want to start learning how to apply R towards their field), and experienced R users … . the book has an extremely broad coverage of R’s many packages that can be used towards business data analysis, with a very hands on approach that can help many new users quickly come up to speed and running on utilizing R’s powerful capabilities.” (Intelligent Trading Tech, October, 2012)
Notă biografică
Ajay Ohri is the founder of analytics startup Decisionstats.com. He has pursued graduate studies at the University of Tennessee, Knoxville and the Indian Institute of Management, Lucknow. In addition, Ohri has a mechanical engineering degree from the Delhi College of Engineering. He has interviewed more than 100 practitioners in analytics, including leading members from all the analytics software vendors. Ohri has written almost 1300 articles on his blog, besides guest writing for influential analytics communities. He teaches courses in R through online education and has worked as an analytics consultant in India for the past decade. Ohri was one of the earliest independent analytics consultant in India, and his current research interests include spreading open source analytics, analyzing social media manipulation, simpler interfaces to cloud computing and unorthodox cryptography.
Textul de pe ultima copertă
R for Business Analytics looks at some of the most common tasks performed by business analysts and helps the user navigate the wealth of information in R and its 4000 packages. With this information the reader can select the packages that can help process the analytical tasks with minimum effort and maximum usefulness. The use of Graphical User Interfaces (GUI) is emphasized in this book to further cut down and bend the famous learning curve in learning R. This book is aimed to help you kick-start with analytics including chapters on data visualization, code examples on web analytics and social media analytics, clustering, regression models, text mining, data mining models and forecasting. The book tries to expose the reader to a breadth of business analytics topics without burying the user in needless depth. The included references and links allow the reader to pursue business analytics topics.
This book is aimed at business analysts with basic programming skills for using R for Business Analytics. Note the scope of the book is neither statistical theory nor graduate level research for statistics, but rather it is for business analytics practitioners. Business analytics (BA) refers to the field of exploration and investigation of data generated by businesses. Business Intelligence (BI) is the seamless dissemination of information through the organization, which primarily involves business metrics both past and current for the use of decision support in businesses. Data Mining (DM) is the process of discovering new patterns from large data using algorithms and statistical methods. To differentiate between the three, BI is mostly current reports, BA is models to predict and strategize and DM matches patterns in big data. The R statistical software is the fastest growing analytics platform in the world, and is established in both academia and corporations for robustness, reliability and accuracy.
This book is aimed at business analysts with basic programming skills for using R for Business Analytics. Note the scope of the book is neither statistical theory nor graduate level research for statistics, but rather it is for business analytics practitioners. Business analytics (BA) refers to the field of exploration and investigation of data generated by businesses. Business Intelligence (BI) is the seamless dissemination of information through the organization, which primarily involves business metrics both past and current for the use of decision support in businesses. Data Mining (DM) is the process of discovering new patterns from large data using algorithms and statistical methods. To differentiate between the three, BI is mostly current reports, BA is models to predict and strategize and DM matches patterns in big data. The R statistical software is the fastest growing analytics platform in the world, and is established in both academia and corporations for robustness, reliability and accuracy.
Caracteristici
Covers full spectrum of R packages related to business analytics Step-by-step instruction on the use of R packages, in addition to exercises, references, interviews and useful links Background information and exercises are all applied to practical business analysis topics, such as code examples on web and social media analytics, data mining, clustering and regression models Includes supplementary material: sn.pub/extras