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SCADペナルティ付き回帰×冗長性分析×
分野心理測定学心理測定学
系統Latent structureLatent structure
提唱年20011977
提唱者Jianqing Fan, Runze LiAlbert van den Wollenberg
種類Penalized regression with non-concave penaltyAsymmetric multivariate analysis
原典Fan, J., & Li, R. (2001). Variable selection via nonconcave penalized likelihood and its oracle properties. Journal of the American Statistical Association, 96(456), 1348-1360. DOI ↗van den Wollenberg, A. L. (1977). Redundancy analysis: An alternative for canonical correlation analysis. Psychometrika, 42(2), 207-219. DOI ↗
別名SCADRDA
関連55
概要SCAD (Smoothly Clipped Absolute Deviation) is a variable selection and regularization method developed by Fan and Li (2001) that addresses limitations of L1 penalization (lasso). SCAD uses a non-concave penalty that automatically performs variable selection while maintaining oracle properties: it recovers the true underlying model as if the true predictors were known in advance.Redundancy Analysis (RDA) is a multivariate technique developed by van den Wollenberg (1977) that combines multiple regression and principal component analysis. RDA finds linear combinations of predictor variables that best predict variation in response variables, making it ideal for understanding how sets of predictors collectively explain multivariate outcomes.
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ScholarGate手法を比較: SCAD Penalized Regression · Redundancy Analysis. 2026-06-18に以下より取得 https://scholargate.app/ja/compare