General regression methods for respondent-driven sampling data.

Stat Methods Med Res

Department of Epidemiology, Biostatistics an Occupational Health, McGill University, Montreal, Quéebec, Canada.

Published: September 2021

Respondent-driven sampling is a variant of link-tracing sampling techniques that aim to recruit hard-to-reach populations by leveraging individuals' social relationships. As such, a respondent-driven sample has a graphical component which represents a partially observed network of unknown structure. Moreover, it is common to observe , or the tendency to form connections with individuals who share similar traits. Currently, there is a lack of principled guidance on multivariate modelling strategies for respondent-driven sampling to address peer effects driven by homophily and the dependence between observations within the network. In this work, we propose a methodology for general regression techniques using respondent-driven sampling data. This is used to study the socio-demographic predictors of HIV treatment optimism (about the value of antiretroviral therapy) among gay, bisexual and other men who have sex with men, recruited into a respondent-driven sampling study in Montreal, Canada.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8424528PMC
http://dx.doi.org/10.1177/09622802211032713DOI Listing

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