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Understanding Computational Bayesian Statistics
William M. Bolstad
€ 200.69
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Description for Understanding Computational Bayesian Statistics
Hardcover. A hands-on introduction to computational statistics from a Bayesian point of view Providing a solid grounding in statistics while uniquely covering the topics from a Bayesian perspective, Understanding Computational Bayesian Statistics successfully guides readers through this new, cutting-edge approach. Series: Wiley Series in Computational Statistics. Num Pages: 336 pages, Illustrations. BIC Classification: PBT. Category: (UP) Postgraduate, Research & Scholarly; (UU) Undergraduate. Dimension: 241 x 153 x 25. Weight in Grams: 604.
A hands-on introduction to computational statistics from a Bayesian point of view
Read moreProviding a solid grounding in statistics while uniquely covering the topics from a Bayesian perspective, Understanding Computational Bayesian Statistics successfully guides readers through this new, cutting-edge approach. With its hands-on treatment of the topic, the book shows how samples can be drawn...
Product Details
Format
Hardback
Publication date
2010
Publisher
John Wiley & Sons Inc United Kingdom
Number of pages
336
Condition
New
Series
Wiley Series in Computational Statistics
Number of Pages
336
Place of Publication
New York, United States
ISBN
9780470046098
SKU
V9780470046098
Shipping Time
Usually ships in 7 to 11 working days
Ref
99-50
About William M. Bolstad
WILLIAM M. BOLSTAD, PHD, is Senior Lecturer in the Department of Statistics at The University of Waikato (New Zealand). Dr. Bolstad's research interests include Bayesian statistics, MCMC methods, recursive estimation techniques, multiprocess dynamic time series models, and forecasting. He is the author of Introduction to Bayesian Statistics, Second Edition, also published by Wiley.
Reviews for Understanding Computational Bayesian Statistics
"Understanding computational Bayesian statistics is an excellent book for courses on computational statistics at the advanced undergraduate and graduate levels. It is also a valuable reference for researchers and practitioners who use computer programs to conduct statistical analyses of data and solve problems in their everyday work." (Mathematical Reviews, 2011)