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Discovering Knowledge in Data by Daniel T. Larose

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Discovering Knowledge in Data

An Introduction to Data Mining

Daniel T. Larose, Chantal D. Larose

Wiley · Print & ebook · July 8, 2014

Reading lane: Data Mining

The field of data mining lies at the confluence of predictive analytics, statistical analysis, and business intelligence.

At a Glance

Who It's For

Readers seeking hands-on instruction in data mining methodsBusiness readers exploring data mining for company databases

Book Details

Authors
Daniel T. Larose, Chantal D. Larose
Publisher
Wiley
Published
July 8, 2014
Format
Print & ebook
Theme
Data Mining · Data Warehousing
Reading lane
Data Mining

Affinity

Publisher Categories

  • Data Mining

  • Data Warehousing

About This Book

The field of data mining lies at the confluence of predictive analytics, statistical analysis, and business intelligence. Due to the ever-increasing complexity and size of data sets and the wide range of applications in computer science, business, and health care, the process of discovering knowledge in data is more relevant than ever before. This book provides the tools needed to thrive in today’s big data world. The author demonstrates how to leverage a company’s existing...

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The field of data mining lies at the confluence of predictive analytics, statistical analysis, and business intelligence. Due to the ever-increasing complexity and size of data sets and the wide range of applications in computer science, business, and health care, the process of discovering knowledge in data is more relevant than ever before. This book provides the tools needed to thrive in today’s big data world. The author demonstrates how to leverage a company’s existing databases to increase profits and market share, and carefully explains the most current data science methods and techniques. The reader will “learn data mining by doing data mining”. By adding chapters on data modelling preparation, imputation of missing data, and multivariate statistical analysis, Discovering Knowledge in Data, Second Edition remains the eminent reference on data mining . - The second edition of a highly praised, successful reference on data mining, with thorough coverage of big data applications, predictive analytics, and statistical analysis. - Includes new chapters on Multivariate Statistics, Preparing to Model the Data, and Imputation of Missing Data, and an Appendix on Data Summarization and Visualization - Offers extensive coverage of the R statistical programming language - Contains 280 end-of-chapter exercises - Includes a companion website for university instructors who adopt the book

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