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Tulin-Asas Morfometri (VBM)×Pemodelan Persamaan Struktur×
BidangPengimejan NeuroStatistik Penyelidikan
KeluargaProcess / pipelineProcess / pipeline
Tahun asal20001921
PengasasJohn AshburnerSewall Wright
JenisStructural MRI gray matter analysis pipelineMethod
Sumber perintisAshburner, J., & Friston, K. J. (2000). Voxel-based morphometry—the methods. NeuroImage, 11(6), 805–821. DOI ↗Jöreskog, K. G., & Sörbom, D. (1973). LISREL: A general computer program for estimating a linear structural equation system. Research Bulletin 73-5. University of Stockholm. link ↗
AliasVBM, grey matter morphometrySEM, path analysis, latent variable modeling, causal modeling
Berkaitan23
RingkasanVoxel-Based Morphometry (VBM) is a whole-brain statistical technique for detecting local differences in gray matter volume or concentration from structural MRI. Introduced by John Ashburner and Karl Friston in 2000, VBM enables researchers to identify regional brain volume changes associated with disease, aging, learning, and other factors without requiring a priori region-of-interest definitions.Structural equation modeling (SEM) is a comprehensive statistical framework combining path analysis (Sewall Wright, 1921) and confirmatory factor analysis to test complex causal models linking observed and latent variables. Formalized by Jöreskog (1973) with LISREL software, SEM enables simultaneous estimation of measurement relationships (how variables measure latent constructs) and structural relationships (how constructs influence outcomes), making it powerful for theory testing in psychology, epidemiology, organizational research, and health sciences where complex mediation, moderation, and latent processes require integrated analysis.
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ScholarGateBandingkan kaedah: Voxel-Based Morphometry · Structural Equation Modeling. Dicapai 2026-06-15 daripada https://scholargate.app/ms/compare