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Modellizzazione di Equazioni Strutturali×Analisi di Regressione Multipla×
CampoStatistica per la ricercaStatistica per la ricerca
FamigliaProcess / pipelineProcess / pipeline
Anno di origine19211801
IdeatoreSewall WrightCarl Friedrich Gauss
TipoMethodMethod
Fonte seminaleJöreskog, K. G., & Sörbom, D. (1973). LISREL: A general computer program for estimating a linear structural equation system. Research Bulletin 73-5. University of Stockholm. link ↗Draper, N. R., & Smith, H. (1966). Applied Regression Analysis. John Wiley & Sons. link ↗
AliasSEM, path analysis, latent variable modeling, causal modelingMLR, multivariate regression, linear regression
Correlati34
SintesiStructural equation modeling (SEM) is a comprehensive statistical framework combining path analysis (Sewall Wright, 1921) and confirmatory factor analysis to test complex causal models linking observed and latent variables. Formalized by Jöreskog (1973) with LISREL software, SEM enables simultaneous estimation of measurement relationships (how variables measure latent constructs) and structural relationships (how constructs influence outcomes), making it powerful for theory testing in psychology, epidemiology, organizational research, and health sciences where complex mediation, moderation, and latent processes require integrated analysis.Multiple regression analysis is a statistical method for modeling the relationship between a continuous dependent variable and two or more independent variables (predictors). Originating from Gauss's early 19th-century work and formalized by Draper and Smith (1966), it estimates linear equations predicting outcomes from multiple predictors while accounting for confounding relationships, making it indispensable in epidemiology, economics, psychology, and clinical research.
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  3. PUBLISHED
  1. v1
  2. 3 Fonti
  3. PUBLISHED

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ScholarGateConfronta i metodi: Structural Equation Modeling · Multiple Regression Analysis. Consultato il 2026-06-15 da https://scholargate.app/it/compare