Applied Bayesian Forecasting and Time Series Analysis
eBook - ePub

Applied Bayesian Forecasting and Time Series Analysis

  1. 432 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Applied Bayesian Forecasting and Time Series Analysis

About this book

Practical in its approach, Applied Bayesian Forecasting and Time Series Analysis provides the theories, methods, and tools necessary for forecasting and the analysis of time series. The authors unify the concepts, model forms, and modeling requirements within the framework of the dynamic linear mode (DLM). They include a complete theoretical development of the DLM and illustrate each step with analysis of time series data. Using real data sets the authors: Explore diverse aspects of time series, including how to identify, structure, explain observed behavior, model structures and behaviors, and interpret analyses to make informed forecasts Illustrate concepts such as component decomposition, fundamental model forms including trends and cycles, and practical modeling requirements for routine change and unusual events Conduct all analyses in the BATS computer programs, furnishing online that program and the more than 50 data sets used in the text The result is a clear presentation of the Bayesian paradigm: quantified subjective judgements derived from selected models applied to time series observations. Accessible to undergraduates, this unique volume also offers complete guidelines valuable to researchers, practitioners, and advanced students in statistics, operations research, and engineering.

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Yes, you can access Applied Bayesian Forecasting and Time Series Analysis by Andy Pole,Mike West,Jeff Harrison in PDF and/or ePUB format, as well as other popular books in Business & Probability & Statistics. We have over one million books available in our catalogue for you to explore.

Information

Table of contents

  1. Cover Page
  2. Halftitle Page
  3. TEXTS IN STATISTICAL SCIENCE SERIES
  4. Title Page
  5. Copyright Page
  6. Dedication Page
  7. Contents
  8. Preface
  9. Applied Bayesian Forecasting and Time Series Analysis
  10. Part A: Dynamic Bayesian Modelling Theory And Applications
  11. Part B: Interactive Time Series Analysis And Forecasting
  12. Chapter 11: Tutorial:
  13. Part C: Bats Reference
  14. Index