Interrupted Time Series Analysis

David McDowall (Distinguished Teaching Professor, School of Criminal Justice, University at Albany, State University of New York),Richard McCleary (Professor of Criminology, Law, and Society; Environmental Health Sciences; and Planning, Policy, and Design, University of California, Irvine),Bradley J. Bartos (Ph.D. Candidate, School of Social Ecology at the University of California, Irvine)

Interrupted Time Series Analysis
Format
Paperback
Publisher
Oxford University Press Inc
Country
United States
Published
1 December 2019
Pages
208
ISBN
9780190943950

Interrupted Time Series Analysis

David McDowall (Distinguished Teaching Professor, School of Criminal Justice, University at Albany, State University of New York),Richard McCleary (Professor of Criminology, Law, and Society; Environmental Health Sciences; and Planning, Policy, and Design, University of California, Irvine),Bradley J. Bartos (Ph.D. Candidate, School of Social Ecology at the University of California, Irvine)

Interrupted Time Series Analysis develops a comprehensive set of models and methods for drawing causal inferences from time series. It provides example analyses of social, behavioral, and biomedical time series to illustrate a general strategy for building AutoRegressive Integrated Moving Average (ARIMA) impact models. Additionally, the book supplements the classic Box-Jenkins-Tiao model-building strategy with recent auxiliary tests for transformation, differencing, and model selection. Not only does the text discuss new developments, including the prospects for widespread adoption of Bayesian hypothesis testing and synthetic control group designs, but it makes optimal use of graphical illustrations in its examples. With forty completed example analyses that demonstrate the implications of model properties, Interrupted Time Series Analysis will be a key inter-disciplinary text in classrooms, workshops, and short-courses for researchers familiar with time series data or cross-sectional regression analysis but limited background in the structure of time series processes and experiments.

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