Introduction to Statistical Time Series: 230 2nd Edition

Introduction to Statistical Time Series: 230 2nd Edition book cover

Introduction to Statistical Time Series: 230 2nd Edition

Author(s): Wayne A. Fuller (Author)

  • Publisher: Wiley-Interscience
  • Publication Date: 4 April 1996
  • Edition: 2nd
  • Language: English
  • Print length: 728 pages
  • ISBN-10: 0471552399
  • ISBN-13: 9780471552390

Book Description

The subject of time series is of considerable interest, especiallyamong researchers in econometrics, engineering, and the naturalsciences. As part of the prestigious Wiley Series in Probabilityand Statistics, this book provides a lucid introduction to thefield and, in this new Second Edition, covers the importantadvances of recent years, including nonstationary models, nonlinearestimation, multivariate models, state space representations, andempirical model identification. New sections have also been addedon the Wold decomposition, partial autocorrelation, long memoryprocesses, and the Kalman filter.

Major topics include:
* Moving average and autoregressive processes
* Introduction to Fourier analysis
* Spectral theory and filtering
* Large sample theory
* Estimation of the mean and autocorrelations
* Estimation of the spectrum
* Parameter estimation
* Regression, trend, and seasonality
* Unit root and explosive time series

To accommodate a wide variety of readers, review material,especially on elementary results in Fourier analysis, large samplestatistics, and difference equations, has been included.

Editorial Reviews

From the Inside Flap

The subject of time series is of considerable interest, especially among researchers in econometrics, engineering, and the natural sciences. As part of the prestigious Wiley Series in Probability and Statistics, this book provides a lucid introduction to the field and, in this new Second Edition, covers the important advances of recent years, including nonstationary models, nonlinear estimation, multivariate models, state space representations, and empirical model identification. New sections have also been added on the Wold decomposition, partial autocorrelation, long memory processes, and the Kalman filter.

Major topics include:

  • Moving average and autoregressive processes
  • Introduction to Fourier analysis
  • Spectral theory and filtering
  • Large sample theory
  • Estimation of the mean and autocorrelations
  • Estimation of the spectrum
  • Parameter estimation
  • Regression, trend, and seasonality
  • Unit root and explosive time series

To accommodate a wide variety of readers, review material, especially on elementary results in Fourier analysis, large sample statistics, and difference equations, has been included.

From the Back Cover

The subject of time series is of considerable interest, especially among researchers in econometrics, engineering, and the natural sciences. As part of the prestigious Wiley Series in Probability and Statistics, this book provides a lucid introduction to the field and, in this new Second Edition, covers the important advances of recent years, including nonstationary models, nonlinear estimation, multivariate models, state space representations, and empirical model identification. New sections have also been added on the Wold decomposition, partial autocorrelation, long memory processes, and the Kalman filter.

Major topics include:

  • Moving average and autoregressive processes
  • Introduction to Fourier analysis
  • Spectral theory and filtering
  • Large sample theory
  • Estimation of the mean and autocorrelations
  • Estimation of the spectrum
  • Parameter estimation
  • Regression, trend, and seasonality
  • Unit root and explosive time series

To accommodate a wide variety of readers, review material, especially on elementary results in Fourier analysis, large sample statistics, and difference equations, has been included.

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