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| Байесов анализ на модерация× | Байесов умерено опосредстван ефект× | Модериран медиационен анализ× | |
|---|---|---|---|
| Област | Статистика | Статистика | Статистика |
| Семейство | Latent structure | Latent structure | Latent structure |
| Година на възникване≠ | 2000s–2010s | 2009–2013 | 2007 |
| Създател≠ | Bayesian framework applied to moderation by Kruschke, Gelman and colleagues | Yuan & MacKinnon (Bayesian mediation); Hayes (conditional process framework) | Preacher, Rucker & Hayes |
| Тип≠ | Interaction / moderator test | Conditional indirect effect model | Conditional process model |
| Основополагащ източник≠ | Hayes, A. F. (2018). Introduction to Mediation, Moderation, and Conditional Process Analysis: A Regression-Based Approach (2nd ed.). Guilford Press. ISBN: 978-1462534654 | Yuan, Y. & MacKinnon, D. P. (2009). Bayesian mediation analysis. Psychological Methods, 14(4), 301–322. DOI ↗ | Hayes, A. F. (2018). Introduction to Mediation, Moderation, and Conditional Process Analysis: A Regression-Based Approach (2nd ed.). Guilford Press. ISBN: 978-1462534654 |
| Други названия | Bayesian interaction analysis, Bayesian moderated regression, Bayesian moderator testing, BMA | Bayesian conditional process analysis, Bayesian mediated moderation, Bayesian PROCESS model, Bayesian conditional indirect effect | conditional process analysis, moderated mediation model, first-stage moderated mediation, second-stage moderated mediation |
| Свързани≠ | 2 | 4 | 4 |
| Резюме≠ | Bayesian moderation analysis tests whether the relationship between a predictor and an outcome changes depending on the value of a third variable (the moderator). By placing prior distributions on all model parameters and updating them with observed data, it yields full posterior distributions for the interaction effect — enabling direct probability statements about the moderation rather than binary significance decisions. | Bayesian moderated mediation estimates how a mediator transmits the effect of a predictor onto an outcome, and whether that indirect effect varies in size depending on a moderator variable — all within a Bayesian framework that quantifies uncertainty via posterior distributions rather than p-values and confidence intervals. | Moderated mediation tests whether the indirect effect of an independent variable on an outcome — transmitted through a mediator — differs in strength depending on the level of a moderator variable. It answers the question: for whom, or under what conditions, does the mediated pathway operate most strongly? |
| ScholarGateНабор от данни ↗ |
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