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Hands-On Time Series Analysis with R

You're reading from  Hands-On Time Series Analysis with R

Product type Book
Published in May 2019
Publisher Packt
ISBN-13 9781788629157
Pages 448 pages
Edition 1st Edition
Languages
Author (1):
Rami Krispin Rami Krispin
Profile icon Rami Krispin

Table of Contents (14) Chapters

Preface 1. Introduction to Time Series Analysis and R 2. Working with Date and Time Objects 3. The Time Series Object 4. Working with zoo and xts Objects 5. Decomposition of Time Series Data 6. Seasonality Analysis 7. Correlation Analysis 8. Forecasting Strategies 9. Forecasting with Linear Regression 10. Forecasting with Exponential Smoothing Models 11. Forecasting with ARIMA Models 12. Forecasting with Machine Learning Models 13. Other Books You May Enjoy

The moving average process

In some cases, the forecasting model is unable to capture all the series patterns, and therefore some information is left over in model residuals (or forecasting error) . The goal of the moving average process is to capture patterns in the residuals, if they exist, by modeling the relationship between Yt, the error term, t, and the past q error terms of the models (for example, ). The structure of the MA process is fairly similar to the ones of the AR. The following equation defines an MA process with a q order:

The following terms are used in the preceding equation:

  • MA(q) is the notation for an MA process with q-order
  • represents the mean of the series
  • are white noise error terms
  • is the corresponding coefficient of
  • q defines the number of past error terms to be used in the equation
Like the AR process, the MA equation holds only if the...
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