A Second Generation Nonlinear Factor Analysis
PsychometrikaPublished 1 September 1983
Jamshid Etezadi-Amoli, Roderick P. McDonald
Citations76
SJR quartileQ1
SJR score1.90
SNIP2.06
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Abstract
Nonlinear common factor models with polynomial regression functions, including interaction terms, are fitted by simultaneously estimating the factor loadings and common factor scores, using maximum-likelihood-ratio and ordinary-least-squares methods. A Monte Carlo study gives support to a conjecture about the form of the distribution of the likelihood-ratio criterion.
Keywords
MathematicsAgricultural and Biological SciencesEconomics, Econometrics and Finance
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