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Robusna konjunkcijska analiza×Modeliranje smjesa×
PodručjeStatistikaStatistika
ObiteljLatent structureLatent structure
Godina nastanka1990s–2000s1894
TvoracAdaptations developed by robust statistics researchers building on Green and Srinivasan's conjoint frameworkKarl Pearson
VrstaPreference decomposition / stated preferenceLatent variable / density estimation
Temeljni izvorCroux, C., Filzmoser, P., & Oliveira, M. R. (2007). Algorithms for Projection-Pursuit Robust Principal Component Analysis. Chemometrics and Intelligent Laboratory Systems, 87(2), 218–225. DOI ↗McLachlan, G. J. & Peel, D. (2000). Finite Mixture Models. Wiley-Interscience. ISBN: 978-0471006268
Drugi nazivirobust CA, outlier-resistant conjoint analysis, robust stated preference analysisfinite mixture model, mixture distribution model, FMM, model-based clustering
Srodne46
SažetakRobust conjoint analysis decomposes respondent preferences for multi-attribute products or services into part-worth utilities while guarding against the distorting influence of outlying ratings or unusual respondents. It adapts classical conjoint estimation with robust regression or robust aggregation techniques so that conclusions about attribute importance remain trustworthy even when a minority of evaluations deviate markedly from the majority.Mixture modeling assumes that a population is composed of K unobserved subpopulations, each described by its own probability distribution. The observed data are treated as draws from a weighted combination of these component distributions. It provides a principled, model-based alternative to ad hoc clustering and supports formal comparison of solutions with different numbers of components.
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ScholarGateUsporedite metode: Robust Conjoint Analysis · Mixture Modeling. Preuzeto 2026-06-17 s https://scholargate.app/hr/compare