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      Book

      A User's Guide to Business Analytics
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      Book

      A User's Guide to Business Analytics

      DOI link for A User's Guide to Business Analytics

      A User's Guide to Business Analytics book

      A User's Guide to Business Analytics

      DOI link for A User's Guide to Business Analytics

      A User's Guide to Business Analytics book

      ByAyanendranath Basu, Srabashi Basu
      Edition 1st Edition
      First Published 2016
      eBook Published 3 August 2016
      Pub. Location New York
      Imprint Chapman and Hall/CRC
      DOI https://doi.org/10.1201/9781315374062
      Pages 400
      eBook ISBN 9781315374062
      Subjects Computer Science, Economics, Finance, Business & Industry, Mathematics & Statistics
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      Basu, A., & Basu, S. (2016). A User's Guide to Business Analytics (1st ed.). Chapman and Hall/CRC. https://doi.org/10.1201/9781315374062

      ABSTRACT

      A User's Guide to Business Analytics provides a comprehensive discussion of statistical methods useful to the business analyst. Methods are developed from a fairly basic level to accommodate readers who have limited training in the theory of statistics. A substantial number of case studies and numerical illustrations using the R-software package are provided for the benefit of motivated beginners who want to get a head start in analytics as well as for experts on the job who will benefit by using this text as a reference book.

      The book is comprised of 12 chapters. The first chapter focuses on business analytics, along with its emergence and application, and sets up a context for the whole book. The next three chapters introduce R and provide a comprehensive discussion on descriptive analytics, including numerical data summarization and visual analytics. Chapters five through seven discuss set theory, definitions and counting rules, probability, random variables, and probability distributions, with a number of business scenario examples. These chapters lay down the foundation for predictive analytics and model building.

      Chapter eight deals with statistical inference and discusses the most common testing procedures. Chapters nine through twelve deal entirely with predictive analytics. The chapter on regression is quite extensive, dealing with model development and model complexity from a user’s perspective. A short chapter on tree-based methods puts forth the main application areas succinctly. The chapter on data mining is a good introduction to the most common machine learning algorithms. The last chapter highlights the role of different time series models in analytics. In all the chapters, the authors showcase a number of examples and case studies and provide guidelines to users in the analytics field.

      TABLE OF CONTENTS

      chapter 1|8 pages

      What Is Analytics?

      chapter 2|10 pages

      Introducing R—An Analytics Software

      chapter 3|30 pages

      Reporting Data

      chapter 4|26 pages

      Statistical Graphics and Visual Analytics

      chapter 5|30 pages

      Probability

      chapter 6|34 pages

      Random Variables and Probability Distributions

      chapter 7|38 pages

      Continuous Random Variables

      chapter 8|42 pages

      Statistical Inference

      chapter 9|58 pages

      Regression for Predictive Model Building

      chapter 10|20 pages

      Decision Trees

      chapter 11|24 pages

      Data Mining and Multivariate Methods

      chapter 12|52 pages

      Modeling Time Series Data for Forecasting

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