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  1.  13
    Generalized Structured Component Analysis with Uniqueness Terms for Accommodating Measurement Error.Heungsun Hwang, Yoshio Takane & Kwanghee Jung - 2017 - Frontiers in Psychology 8.
    Generalized structured component analysis (GSCA) is a component-based approach to structural equation modeling (SEM), where latent variables are approximated by weighted composites of indicators. It has no formal mechanism to incorporate errors in indicators, which in turn renders components prone to the errors as well. We propose to extend GSCA to account for errors in indicators explicitly. This extension, called GSCA_M, considers both common and unique parts of indicators, as postulated in common factor analysis, and estimates a weighted composite of (...)
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  2.  14
    A Comparative Study on the Performance of GSCA and CSA in Parameter Recovery for Structural Equation Models With Ordinal Observed Variables.Kwanghee Jung, Pavel Panko, Jaehoon Lee & Heungsun Hwang - 2018 - Frontiers in Psychology 9.
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    Comparison of Bootstrap Confidence Interval Methods for GSCA Using a Monte Carlo Simulation.Kwanghee Jung, Jaehoon Lee, Vibhuti Gupta & Gyeongcheol Cho - 2019 - Frontiers in Psychology 10.
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    Detecting Conditional Dependence Using Flexible Bayesian Latent Class Analysis.Jaehoon Lee, Kwanghee Jung & Jungkyu Park - 2020 - Frontiers in Psychology 11.
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