JOURNAL ARTICLE

A tutorial on count regression and zero-altered count models for longitudinal substance use data.

David C. AtkinsScott A. BaldwinCheng ZhengRobert GallopClayton Neighbors

Year: 2012 Journal:   Psychology of Addictive Behaviors Vol: 27 (1)Pages: 166-177   Publisher: American Psychological Association

Abstract

Critical research questions in the study of addictive behaviors concern how these behaviors change over time: either as the result of intervention or in naturalistic settings. The combination of count outcomes that are often strongly skewed with many zeroes (e.g., days using, number of total drinks, number of drinking consequences) with repeated assessments (e.g., longitudinal follow-up after intervention or daily diary data) present challenges for data analyses. The current article provides a tutorial on methods for analyzing longitudinal substance use data, focusing on Poisson, zero-inflated, and hurdle mixed models, which are types of hierarchical or multilevel models. Two example datasets are used throughout, focusing on drinking-related consequences following an intervention and daily drinking over the past 30 days, respectively. Both datasets as well as R, SAS, Mplus, Stata, and SPSS code showing how to fit the models are available on a supplemental website.

Keywords:
Count data Psychology Multilevel model Longitudinal study Addiction Poisson regression Naturalistic observation Longitudinal data Intervention (counseling) Zero-inflated model Substance use Poisson distribution Regression analysis Statistics Clinical psychology Social psychology Computer science Mathematics Medicine Psychiatry Environmental health Data mining

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Citation History

Topics

Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Mental Health Research Topics
Social Sciences →  Psychology →  Experimental and Cognitive Psychology
Statistical Methods and Inference
Physical Sciences →  Mathematics →  Statistics and Probability
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