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Treatment Effect on the Association Between Outcomes

DSEID
DSEID-001-7570377
DOI
10.1177/00491241261430340
Journal
Sociological Methods & Research
Publisher
SAGE Publications
Published
2026-3-17
Status
metadata_only

Abstract

This article introduces treatment effect on the association between outcomes (TEA), a new causal estimand that measures how a treatment influences the covariance between two post-treatment variables. TEA enables researchers to estimate how interventions affect associations that characterize social inequalities. I define TEA, provide identification results under standard causal inference assumptions, and outline estimation strategies including regression-imputation, weighting, and double machine learning estimators. I compare and contrast TEA with other common estimands in similar research settings, highlighting its unique use. I demonstrate the use of TEA through two applications: the effect of college completion on income gradient in health and the effect of college completion on issue alignment, using NLSY97 and GSS, respectively. By exploring how treatments modify associations between outcomes, TEA offers a valuable tool for sociological research on inequality, stratification, and public opinion, providing insights into the mechanisms sustaining social inequalities and informing policy interventions.

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Metadata

Title
Treatment Effect on the Association Between Outcomes
Delta ID
DSEID-001-7570377
Authors
Lai Wei
Abstract source
crossref
Source URL
None
Access
closed_or_uncertain
Licence
unknown
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TEI SHA-256
GROBID

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Record history

WhenEventFieldOldNew
2026-06-18 19:37:53.011249+00:00identifier_assignedDSEIDDSEID-001-7570377