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Kausālā mediācijas analīze (dabiski tiešie un netiešie efekti)×Moderācijas (mijiedarbības) analīze×
NozareCēloņsakarību secināšanaCēloņsakarību secināšana
SaimeRegression modelRegression model
Izcelsmes gads20102018
AutorsPearl (2001); general framework by Imai, Keele & Tingley (2010)Aiken & West (1991); Hayes (PROCESS, 2018)
TipsCounterfactual causal decompositionLinear regression with interaction term
PirmavotsPearl, J. (2001). Direct and Indirect Effects. In Proceedings of the Seventeenth Conference on Uncertainty in Artificial Intelligence (UAI), 411-420. link ↗Hayes, A. F. (2018). Introduction to Mediation, Moderation, and Conditional Process Analysis (2nd ed.). Guilford Press. ISBN: 978-1462534654
Citi nosaukuminatural direct effect, natural indirect effect, NDE / NIE decomposition, counterfactual mediationinteraction analysis, moderated regression, simple moderation, Düzenleyici Değişken Analizi (Moderation / İnteraksiyon)
Saistītās55
KopsavilkumsCausal mediation analysis is a counterfactual framework that splits a treatment's total effect into a Natural Direct Effect (NDE) and a Natural Indirect Effect (NIE) that runs through a mediator. The modern general approach was formalised by Pearl (2001) and Imai, Keele and Tingley (2010), giving the decomposition a precise causal interpretation.Moderation analysis tests whether the effect of a predictor X on an outcome Y changes with the level of a third variable W, the moderator. It is estimated within a regression framework through an interaction term X×W, popularised by Aiken & West (1991) and Hayes's PROCESS macro (2018).
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ScholarGateSalīdzināt metodes: Causal Mediation Analysis · Moderation Analysis. Izgūts 2026-06-18 no https://scholargate.app/lv/compare