Bayesian Statistics and Marketing

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Synopsis

Fine-tune your marketing research with this cutting-edge statistical toolkit Bayesian Statistics and Marketing illustrates the potential for applying a Bayesian approach to some of the most challenging and important problems in marketing. Analyzing household and consumer data, predicting product performance, and custom-targeting campaigns are only a few of the areas in which Bayesian approaches promise revolutionary results. This book provides a comprehensive, accessible overview of this subject essential for any statistically informed marketing researcher or practitioner. Economists and other social scientists will find a comprehensive treatment of many Bayesian methods that are central to the problems in social science more generally. This includes a practical approach to computationally challenging problems in random coefficient models, non-parametrics, and the problems of endogeneity. Readers of the second edition of Bayesian Statistics and Marketing will also find: Discussion of Bayesian methods in text analysis and Machine Learning Updates throughout reflecting the latest research and applications Discussion of modern statistical software, including an introduction to the R package bayesm, which implements all models incorporated here Extensive case studies throughout to link theory and practice Bayesian Statistics and Marketing is ideal for advanced students and researchers in marketing, business, and economics departments, as well as for any statistically savvy marketing practitioner.

Book details

Edition:
2
Series:
WILEY SERIES IN PROB & STATISTICS/see 1345/6,6214/5
Author:
Peter E. Rossi, Greg M. Allenby, Sanjog Misra
ISBN:
9781394219131
Related ISBNs:
9781394219117, 9781394219148
Publisher:
Wiley
Pages:
N/A
Reading age:
Not specified
Includes images:
No
Date of addition:
2024-07-09
Usage restrictions:
Copyright
Copyright date:
2024
Copyright by:
N/A 
Adult content:
No
Language:
English
Categories:
Business and Finance, Mathematics and Statistics, Nonfiction