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Facteurs de Risque par Composantes Principales×Analyse factorielle×
DomaineFinanceStatistiques de recherche
FamilleRegression modelProcess / pipeline
Année d'origine19911931
Auteur d'origineLitterman & Scheinkman (bond-return factors); Connor & Korajczyk (statistical APT factors)Louis Leon Thurstone
TypeStatistical factor model (dimension reduction)Method
Source fondatriceLitterman, R. & Scheinkman, J. (1991). Common Factors Affecting Bond Returns. Journal of Fixed Income, 1(1), 54-61. DOI ↗Thurstone, L. L. (1947). Multiple Factor Analysis. University of Chicago Press. DOI ↗
Aliasrisk factor PCA, return covariance decomposition, statistical factor model, Risk Faktörü PCA (Getiri Kovaryans Ayrışımı)EFA, CFA, latent variable modeling
Apparentées53
RésuméRisk Factor PCA is a dimension-reduction method that decomposes the return covariance matrix of many assets into a small set of orthogonal principal components interpreted as systematic risk factors. Litterman and Scheinkman (1991) used it to show that bond returns are driven by a few common factors, and Connor and Korajczyk (1988) developed the statistical-factor interpretation for the APT.Factor analysis is a statistical technique for identifying latent (unobserved) dimensions underlying observed variables, developed by Louis Leon Thurstone in the 1930s and formalized by Jöreskog (1969). Exploratory factor analysis (EFA) discovers unknown factor structure from data; confirmatory factor analysis (CFA) tests hypothesized relationships between observed and latent variables. Essential in psychometrics (test development), organizational research (measuring constructs like leadership style), and biomedicine (identifying disease subtypes), factor analysis reduces dimensionality while revealing conceptual organization in multivariate data.
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ScholarGateComparer des méthodes: Principal Component Risk Factors · Factor Analysis. Consulté le 2026-06-17 sur https://scholargate.app/fr/compare