Path Analysis for Binary Random Variables
Martina Raggi,
Elena Stanghellini and
Marco Doretti
Sociological Methods & Research, 2023, vol. 52, issue 4, 1883-1915
Abstract:
The decomposition of the overall effect of a treatment into direct and indirect effects is here investigated with reference to a recursive system of binary random variables. We show how, for the single mediator context, the marginal effect measured on the log odds scale can be written as the sum of the indirect and direct effects plus a residual term that vanishes under some specific conditions. We then extend our definitions to situations involving multiple mediators and address research questions concerning the decomposition of the total effect when some mediators on the pathway from the treatment to the outcome are marginalized over. Connections to the counterfactual definitions of the effects are also made. Data coming from an encouragement design on students’ attitude to visit museums in Florence, Italy, are reanalyzed. The estimates of the defined quantities are reported together with their standard errors to compute p values and form confidence intervals.
Keywords: directed acyclic graph; logistic regression; recursive system; effect decomposition; multiple mediators (search for similar items in EconPapers)
Date: 2023
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Persistent link: https://EconPapers.repec.org/RePEc:sae:somere:v:52:y:2023:i:4:p:1883-1915
DOI: 10.1177/00491241211031260
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