This book is about predictive modeling. Yet each chapter could easily be handled by an entire volume of its own. So one might think of this as a survey of predictive models both statistical and machine learning. We define A predictive model as a statistical model or machine learning model used to predict future behavior based on past behavior. In order to use this book the reader should have a basic understanding of statistics (statistical inference models tests etc.)—this is an advanced book. Every chapter culminates in an example using R. R is a free software environment for statistical computing and graphics. It compiles and runs on a wide variety of UNIX platforms Windows and MacOS. The book is organized so that statistical models are presented first (hopefully in a logical order) followed by machine learning models and then applications: uplift modeling and time series. One could use this as a textbook with problem solving in R (there are no “by-hand” exercises).
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