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ArtikelCase-deletion diagnostics for factor analysis models with continuous and ordinal categorical data  
Oleh: Xu, Liang ; Yum, Lee Sik
Jenis: Article from Journal - ilmiah internasional
Dalam koleksi: Sociological Methods & Research (SMR) vol. 31 no. 03 (Feb. 2003), page 389-419.
Topik: factor analysis; observations; Methodology; measurement
Fulltext: Lee-389-419 - Bernard.pdf (237.15KB)
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  • Perpustakaan PKPM
    • Nomor Panggil: S28
    • Non-tandon: 1 (dapat dipinjam: 0)
    • Tandon: tidak ada
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Isi artikelThis article proposes a method to detect influential observations in a factor analysis model with continuous and ordinal categorical variables. The key ideas are to treat the latent factors as hypothetical missing data and then develop the diagnostic measures on the basis of the conditional expectation of the complete-data log-likelihood function in the EM algorithm. A one-step approximation is proposed to reduce the computational burden. Building blocks for achieving the diagnostic measures are computed via observations generated by the Gibbs sampler Results from a simulation study and an illustrative real example are presented.
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