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Introduction to Time Series Analysis and Forecasting (Wiley Series in Probability and Statistics) [Hardcover]

Douglas C. Montgomery (Author), Cheryl L. Jennings (Author), Murat Kulahci (Author)
4.0 out of 5 stars  See all reviews (1 customer review)

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Book Description

March 28, 2008 0471653977 978-0471653974 1
An accessible introduction to the most current thinking in and practicality of forecasting techniques in the context of time-oriented data.

Analyzing time-oriented data and forecasting are among the most important problems that analysts face across many fields, ranging from finance and economics to production operations and the natural sciences. As a result, there is a widespread need for large groups of people in a variety of fields to understand the basic concepts of time series analysis and forecasting. Introduction to Time Series Analysis and Forecasting presents the time series analysis branch of applied statistics as the underlying methodology for developing practical forecasts, and it also bridges the gap between theory and practice by equipping readers with the tools needed to analyze time-oriented data and construct useful, short- to medium-term, statistically based forecasts.

Seven easy-to-follow chapters provide intuitive explanations and in-depth coverage of key forecasting topics, including:

  • Regression-based methods, heuristic smoothing methods, and general time series models

  • Basic statistical tools used in analyzing time series data

  • Metrics for evaluating forecast errors and methods for evaluating and tracking forecasting performance over time

  • Cross-section and time series regression data, least squares and maximum likelihood model fitting, model adequacy checking, prediction intervals, and weighted and generalized least squares

  • Exponential smoothing techniques for time series with polynomial components and seasonal data

  • Forecasting and prediction interval construction with a discussion on transfer function models as well as intervention modeling and analysis

  • Multivariate time series problems, ARCH and GARCH models, and combinations of forecasts

The ARIMA model approach with a discussion on how to identify and fit these models for non-seasonal and seasonal time series

The intricate role of computer software in successful time series analysis is acknowledged with the use of Minitab, JMP, and SAS software applications, which illustrate how the methods are imple-mented in practice. An extensive FTP site is available for readers to obtain data sets, Microsoft Office PowerPoint slides, and selected answers to problems in the book. Requiring only a basic working knowledge of statistics and complete with exercises at the end of each chapter as well as examples from a wide array of fields, Introduction to Time Series Analysis and Forecasting is an ideal text for forecasting and time series courses at the advanced undergraduate and beginning graduate levels. The book also serves as an indispensable reference for practitioners in business, economics, engineering, statistics, mathematics, and the social, environmental, and life sciences.


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Editorial Reviews

Review

"This would be an appropriate source for use in a first course in time series analysis. It might also be useful as a reference for researchers who want to apply time series analysis to their data sets." (CHOICE, October 2008)

"The result is a book that can be used with a wide variety of audiences, with different interests and technical backgrounds, whose common interests are understanding how to analyze time-oriented data and constructing good short-term statistically based forecasts." (Mathematical Reviews, 2008m)

"The book is great for readers who need to apply the methods and models presented but have little background in mathematics and statistics." (MAA Reviews,  July 2008)

From the Back Cover

An accessible introduction to the most current thinking in and practicality of forecasting techniques in the context of time-oriented data

Analyzing time-oriented data and forecasting are among the most important problems that analysts face across many fields, ranging from finance and economics to production operations and the natural sciences. As a result, there is a widespread need for large groups of people in a variety of fields to understand the basic concepts of time series analysis and forecasting. Introduction to Time Series Analysis and Forecasting presents the time series analysis branch of applied statistics as the underlying methodology for developing practical forecasts, and it also bridges the gap between theory and practice by equipping readers with the tools needed to analyze time-oriented data and construct useful, short- to medium-term, statistically based forecasts.

Seven easy-to-follow chapters provide intuitive explanations and in-depth coverage of key forecasting topics, including:

  • Regression-based methods, heuristic smoothing methods, and general time series models

  • Basic statistical tools used in analyzing time series data

  • Metrics for evaluating forecast errors and methods for evaluating and tracking forecasting performanceover time

  • Cross-section and time series regression data, least squares and maximum likelihood model fitting, model adequacy checking, prediction intervals, and weighted and generalized least squares

  • Exponential smoothing techniques for time series with polynomial components and seasonal data

  • Forecasting and prediction interval construction with a discussion on transfer function models as well as intervention modeling and analysis

  • Multivariate time series problems, ARCH and GARCH models, and combinations of forecasts

The ARIMA model approach with a discussion on how to identify and fit these models for non-seasonal and seasonal time series

The intricate role of computer software in successful time series analysis is acknowledged with the use of Minitab, JMP, and SAS software applications, which illustrate how the methods are imple-mented in practice. An extensive FTP site is available for readers to obtain data sets, Microsoft Office PowerPoint slides, and selected answers to problems in the book. Requiring only a basic working knowledge of statistics and complete with exercises at the end of each chapter as well as examples from a wide array of fields, Introduction to Time Series Analysis and Forecasting is an ideal text for forecasting and time series coursesat the advanced undergraduate and beginning graduate levels. The book also serves as an indispensablereference for practitioners in business, economics, engineering, statistics, mathematics, and the social, environmental, and life sciences.


Product Details

  • Hardcover: 472 pages
  • Publisher: Wiley; 1 edition (March 28, 2008)
  • Language: English
  • ISBN-10: 0471653977
  • ISBN-13: 978-0471653974
  • Product Dimensions: 9.6 x 6.3 x 1.1 inches
  • Shipping Weight: 1.7 pounds (View shipping rates and policies)
  • Average Customer Review: 4.0 out of 5 stars  See all reviews (1 customer review)
  • Amazon Best Sellers Rank: #287,754 in Books (See Top 100 in Books)

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4.0 out of 5 stars Cheap, February 13, 2010
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This review is from: Introduction to Time Series Analysis and Forecasting (Wiley Series in Probability and Statistics) (Hardcover)
I waited and waited before purchasing books for my classes because I did not want to pay the bookstore price. Three days before class, I remembered to check out Amazon and they had the books and they were at least $50.00 cheaper. I also used two-day shipping and I had my books on the first day of class.
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Inside This Book (learn more)
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
autocorrelation function, min var, residual histogram, information criterion, smoothing procedure work, forecasting model performance, smoothing forecasting procedure, how prediction intervals, combined forecast error, chemical viscosity readings, simple exponential smoother, backforecasts excluded, sample size impacted, model adequacy checking, mean patient satisfaction, beverage shipments, exponential smoothers, use simple exponential, exponential smoothing procedure, pharmaceutical product sales, exponential decay pattern, infinitely many weights, percent forecast error, patient satisfaction data, discounted least squares
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Dow Jones Index, Lag Lag, Accuracy Measures, Analysis of Variance Source, Observation Order, Whole Foods Market, Residual Error, Consumer Price Index, Plot Autocorr Ljung-Box, The Durbin-Watson, Murat Kulahci Copyright, John Wiley, Estimate Error, United Kingdom, Standard Approx Variable Variable, Treasury Securities, Variance Estimate, Time Lag, Total R-Square, Satisfaction Versus Age, Rework Exercise, Modified Box-Pierce, Itl Label Intercept, Actual Smoothed Smoothing Constant Alpha, Fit Residual St Resid
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