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Time Series Analysis and Its Applications

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Basic Sciences
Friday, March 7, 2014

Time Series Analysis and Its Applications: With R Examples (Springer Texts in Statistics) [Hardcover]

Author: Amazon Prime | Language: English | ISBN: 144197864X | Format: PDF, EPUB

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Time Series Analysis and Its Applications: With R Examples
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<div style="MARGIN: 0in 0in 10pt"><em>Time Series Analysis and Its Applications</em> presents a balanced and comprehensive treatment of both time and frequency domain methods with accompanying theory. Numerous examples using nontrivial data illustrate solutions to problems such as discovering natural and anthropogenic climate change, evaluating pain perception experiments using functional magnetic resonance imaging, and monitoring a nuclear test ban treaty. The book is designed to be useful as a text for graduate level students in the physical, biological and social sciences and as a graduate level text in statistics. Some parts may also serve as an undergraduate introductory course. Theory and methodology are separated to allow presentations on different levels. In addition to coverage of classical methods of time series regression,&nbsp;ARIMA models, spectral analysis and state-space models, the text includes modern developments including categorical time series analysis, multivariate spectral methods, long memory series, nonlinear models, resampling techniques, GARCH models, stochastic volatility, wavelets and Monte Carlo Markov chain integration methods.&nbsp;The third edition includes a new section on testing for unit roots and the material on state-space modeling, ARMAX models, and regression with autocorrelated errors have been expanded. </div>
<div style="MARGIN: 0in 0in 10pt">Also new to this edition is the enhanced use of the freeware statistical package R.&nbsp;In particular, R code is now included in the text for nearly all of the numerical examples.&nbsp;Data sets and additional R scripts are now provided in one file that may be downloaded via the World Wide Web.&nbsp;This R supplement is a small compressed file that can be loaded easily into R making all the data sets and scripts available to the user with one simple command.&nbsp;The website for the text includes the code used in each example so that the reader may simply copy-and-paste code directly into R.&nbsp;Appendix R, which is new to this edition, provides a reference for the data sets and our R scripts that are used throughout the text. In addition, Appendix R includes a tutorial on basic R commands as well as an R time series tutorial.&nbsp;&nbsp; </div>
Direct download links available for Time Series Analysis and Its Applications: With R Examples
  • Series: Springer Texts in Statistics
  • Hardcover: 596 pages
  • Publisher: Springer; 3rd ed. 2011 edition (November 25, 2010)
  • Language: English
  • ISBN-10: 144197864X
  • ISBN-13: 978-1441978646
  • Product Dimensions: 9.2 x 6.1 x 1.3 inches
  • Shipping Weight: 2.2 pounds (View shipping rates and policies)
  • Amazon Best Sellers Rank: #167,597 in Books (See Top 100 in Books)
    • #33 in Books > Textbooks > Medicine & Health Sciences > Research > Biostatistics
    • #58 in Books > Medical Books > Basic Sciences > Biostatistics
As the title implies, the book is a text on time series analysis and its applications. It is a modern treatment of time series analysis with a slant toward applications. The applications are interesting and involve current topics such as global warming. The examples are broad in range, including data from various fields such as biology, economics, engineering, environmental science, and medicine. The book is interesting and accessible, and it provides an excellent introduction various aspects of the analysis of time series. The text covers both the spectral and time domains, including a thorough presentation of state-space models. The basic requirement for being able to understand most of the text is knowing the material that would be covered in introductory courses on regression and mathematical statistics.

The book has many interesting and "real" (as opposed to "toy") examples and, as the subtitle explains, many of the examples have associated R code. This makes for a positive experience because you can replicate the analyses. Accordingly, there is no guessing as to what was done to obtain the results of an example. It is completely wrong to say that "R is not relevant". But you do not have to take my word for it! Just go to the website for the text at StatLib and all the R code in the text is posted there. In addition, as the authors' state in the Preface (which is also available for viewing at the website for the text), R code for the state-space chapter (Chapter 6) is on the website for the text. There you will find code for the Kalman filter and smoothing algorithms, as well as the EM algorithm and some examples for maximum likelihood estimation. The website for the text also has a small tutorial for a quick start on using R to do time series analysis.

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