Least Squares Support Vector Machine Classifiers

Least Squares Support Vector Machine Classifiers

J.A.K. Suykens;J. Vandewalle;J.A.K. Suykens;J. Vandewalle;
neural processing letters 1970 Vol. 9 pp. 293-300
280
suykens1970neuralleast

Abstract

In this letter we discuss a least squares version for support vector machine (SVM) classifiers. Due to equality type constraints in the formulation, the solution follows from solving a set of linear equations, instead of quadratic programming for classical SVM's. The approach is illustrated on a two-spiral benchmark classification problem.

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