Literature DB >> 26732361

Structural Equation Models in a Redundancy Analysis Framework With Covariates.

Pietro Giorgio Lovaglio1, Giorgio Vittadini1.   

Abstract

A recent method to specify and fit structural equation modeling in the Redundancy Analysis framework based on so-called Extended Redundancy Analysis (ERA) has been proposed in the literature. In this approach, the relationships between the observed exogenous variables and the observed endogenous variables are moderated by the presence of unobservable composites, estimated as linear combinations of exogenous variables. However, in the presence of direct effects linking exogenous and endogenous variables, or concomitant indicators, the composite scores are estimated by ignoring the presence of the specified direct effects. To fit structural equation models, we propose a new specification and estimation method, called Generalized Redundancy Analysis (GRA), allowing us to specify and fit a variety of relationships among composites, endogenous variables, and external covariates. The proposed methodology extends the ERA method, using a more suitable specification and estimation algorithm, by allowing for covariates that affect endogenous indicators indirectly through the composites and/or directly. To illustrate the advantages of GRA over ERA we propose a simulation study of small samples. Moreover, we propose an application aimed at estimating the impact of formal human capital on the initial earnings of graduates of an Italian university, utilizing a structural model consistent with well-established economic theory.

Entities:  

Year:  2014        PMID: 26732361     DOI: 10.1080/00273171.2014.931798

Source DB:  PubMed          Journal:  Multivariate Behav Res        ISSN: 0027-3171            Impact factor:   5.923


  1 in total

1.  Bayesian Mixture Model of Extended Redundancy Analysis.

Authors:  Minjung Kyung; Ju-Hyun Park; Ji Yeh Choi
Journal:  Psychometrika       Date:  2021-10-15       Impact factor: 2.290

  1 in total

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