Risk and Predictive Analytics in Business with R
商品資訊
系列名:Chapman and Hall/CRC Series on Statistics in Busin
ISBN13:9781032912691
出版社:PBKTYFRL
作者:Ozgur M. (University of Nebraska-Lincoln Araz U.S.A); David L. (University of Nebraska-Lincoln Olson U.S.A)
出版日:2025/08/26
裝訂/頁數:精裝/172頁
規格:15.6cm*23.4cm (高/寬)
商品簡介
The first chapter of this book deals with classification of risks. It includes a typical supply chain example published in academic literature. Chapter 2 gives a brief introduction to R programming. It is not intended to be comprehensive, but sufficient for a user to get started using this free open source and highly popular analytics tool. Chapter 3 discusses risks commonly found in finance, to include basic data mining tools applied to analysis of credit card fraud data. Like the other datasets used in the book, this data comes from the Kaggle.com site, a free site loaded with realistic datasets.
Features:
- Overview of predictive analytics presented in an understandable manner
- Presentation of useful business applications of predictive data mining
- Coverage of risk management in finance, insurance, and supply chain contexts
- Presentation of predictive models
- Demonstration of using these predictive models in R
- Screenshots enabling readers to develop their own models
The remainder of the book covers risk analytics tools. Chapter 4 presents R association rule modeling using a supply chain related dataset. Chapter 5 presents Monte Carlo simulation of some supply chain risk situations. Chapter 6 gives both time series and multiple regression prediction models as well as autoregressive integrated moving average (ARIMA; Box-Jenkins) models in SAS and R. Chapter 7 covers classification models demonstrated with credit risk data. Chapter 8 deals with fraud detection and the common problem of modeling imbalanced datasets. Chapter 9 introduces Naïve Bayes modeling with categorical data using an employee attrition dataset.
The purpose of the book is to present tools useful to analyze risks, especially those faced in supply chain management and finance.
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