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Interrupted time series regression for the evaluation of public health interventions: a tutorial

International Journal of Epidemiology · 2016 · Vol. 46(1) · pp. dyw098–dyw098
Jamie Lopez BernalSteven CumminsAntonio Gasparrini

Abstract

Interrupted time series (ITS) analysis is a valuable study design for evaluating the effectiveness of population-level health interventions that have been implemented at a clearly defined point in time. It is increasingly being used to evaluate the effectiveness of interventions ranging from clinical therapy to national public health legislation. Whereas the design shares many properties of regression-based approaches in other epidemiological studies, there are a range of unique features of time series data that require additional methodological considerations. In this tutorial we use a worked example to demonstrate a robust approach to ITS analysis using segmented regression. We begin by describing the design and considering when ITS is an appropriate design choice. We then discuss the essential, yet often omitted, step of proposing the impact model a priori. Subsequently, we demonstrate the approach to statistical analysis including the main segmented regression model. Finally we describe the main methodological issues associated with ITS analysis: over-dispersion of time series data, autocorrelation, adjusting for seasonal trends and controlling for time-varying confounders, and we also outline some of the more complex design adaptations that can be used to strengthen the basic ITS design.

Advanced Causal Inference TechniquesStatistical Methods and Bayesian InferenceHealth Systems, Economic Evaluations, Quality of LifeRegression analysisComputer scienceTime seriesPsychological interventionInterrupted time seriesRegressionA priori and a posterioriEconometricsPublic healthClinical study design

MeSH terms

HumansPublic HealthResearch DesignEpidemiologic StudiesInterrupted Time Series Analysis

Funding

  • Medical Research Council
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