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An Introduction to Structural Equation Modeling

Authors :
Soumya Ray
Christian M. Ringle
Marko Sarstedt
Nicholas P. Danks
Joseph F. HairJr.
G. Tomas M. Hult
Source :
Classroom Companion: Business ISBN: 9783030805180
Publication Year :
2021
Publisher :
Springer International Publishing, 2021.

Abstract

Structural equation modeling is a multivariate data analysis method for analyzing complex relationships among constructs and indicators. To estimate structural equation models, researchers generally draw on two methods: covariance-based SEM (CB-SEM) and partial least squares SEM (PLS-SEM). Whereas CB-SEM is primarily used to confirm theories, PLS represents a causal–predictive approach to SEM that emphasizes prediction in estimating models, whose structures are designed to provide causal explanations. PLS-SEM is also useful for confirming measurement models. This chapter offers a concise overview of PLS-SEM’s key characteristics and discusses the main differences compared to CB-SEM. The chapter also describes considerations when using PLS-SEM and highlights situations that favor its use compared to CB-SEM.

Details

ISBN :
978-3-030-80518-0
ISBNs :
9783030805180
Database :
OpenAIRE
Journal :
Classroom Companion: Business ISBN: 9783030805180
Accession number :
edsair.doi...........bababb539596116d1b929fcf696ffde3
Full Text :
https://doi.org/10.1007/978-3-030-80519-7_1