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Measurement error correlation within blocks of indicators in consistent partial least squares

Issues and remedies

Dados Bibliográficos

ID12420344
AutoresManuel E Rademaker (0000-0002-8902-3561, University of Würzburg, autor correspondente), Florian Schuberth (0000-0002-2110-9086, University of Twente), Theo K Dijkstra (University of Groningen)
Ano2019
Volume29
Fascículo3
Páginas448-463
Data de publicação2019-03-07
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoInternet Research (JOURNAL)
Identificadores do periódicoISSN: 1066-2243 • E-ISSN: 2054-5657
EditoraEmerald Publishing Limited (PUBLISHER • GB)
DOI10.1108/intr-12-2017-0525
OpenAlexW2921587403
IdiomaEN
Citações recebidas4
Referências citadas34

Purpose The purpose of this paper is to enhance consistent partial least squares (PLSc) to yield consistent parameter estimates for population models whose indicator blocks contain a subset of correlated measurement errors. Design/methodology/approach Correction for attenuation as originally applied by PLSc is modified to include a priori assumptions on the structure of the measurement error correlations within blocks of indicators. To assess the efficacy of the modification, a Monte Carlo simulation is conducted. Findings In the presence of population measurement error correlation, estimated parameter bias is generally small for original and modified PLSc, with the latter outperforming the former for large sample sizes. In terms of the root mean squared error, the results are virtually identical for both original and modified PLSc. Only for relatively large sample sizes, high population measurement error correlation, and low population composite reliability are the increased standard errors associated with the modification outweighed by a smaller bias. These findings are regarded as initial evidence that original PLSc is comparatively robust with respect to misspecification of the structure of measurement error correlations within blocks of indicators. Originality/value Introducing and investigating a new approach to address measurement error correlation within blocks of indicators in PLSc, this paper contributes to the ongoing development and assessment of recent advancements in partial least squares path modeling

A priori and a posteriori · Correlation · Econometrics · Monte Carlo method · Observational error · Partial correlation · Partial least squares regression · Population · Sample size determination · Standard error · Statistics · Advanced Causal Inference Techniques · Economic and Environmental Valuation · Mathematics · Statistical Methods and Bayesian Inference

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Obras citantes distintas4
Citações por ano0,8
Intervalo de citações2021 - 2023 (3)
Velocidade de citaçãohistorical
Altamente citadoNão
Tipos de citaçãoNeutras: 4
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