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Szabályozott Támogatásvektoros Gépek×Lineáris diszkriminanciaanalízis (LDA)×
TudományterületGépi tanulásGépi tanulás
MódszercsaládMachine learningLatent structure
Keletkezés éve1995–20041936
MegalkotóCortes, C. & Vapnik, V. (soft-margin SVM); Zhu et al. (L1-SVM)Fisher, R. A.
TípusRegularized discriminative classifier / regressorSupervised dimensionality reduction and linear classifier
AlapműCortes, C. & Vapnik, V. (1995). Support-vector networks. Machine Learning, 20(3), 273–297. DOI ↗Fisher, R. A. (1936). The use of multiple measurements in taxonomic problems. Annals of Eugenics, 7(2), 179–188. DOI ↗
Alternatív nevekRegularized SVM, L1-SVM, L2-SVM, penalized SVMLDA, Fisher's discriminant analysis, Fisher linear discriminant, normal discriminant analysis
Kapcsolódó44
ÖsszefoglalóRegularized Support Vector Machine extends the classic SVM by explicitly controlling the trade-off between margin maximization and training error through an L1 or L2 penalty parameter. The soft-margin formulation introduced by Cortes and Vapnik in 1995 is itself a regularized model, and later L1-SVM variants additionally promote feature sparsity, enabling automatic variable selection in high-dimensional settings.Linear Discriminant Analysis is a supervised method for dimensionality reduction and classification, introduced by Ronald A. Fisher in 1936, that finds linear combinations of features which maximally separate predefined classes while preserving as much class-discriminatory information as possible. It simultaneously serves as a feature-projection technique and a probabilistic classifier, making it one of the foundational methods in pattern recognition and statistical learning.
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ScholarGateMódszerek összehasonlítása: Regularized Support Vector Machine · Linear Discriminant Analysis. Letöltve 2026-06-17, forrás: https://scholargate.app/hu/compare