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Computing the Solution Path for the Regularized Support Vector Regression

Conference Paper Artificial Intelligence · Machine Learning

Abstract

In this paper we derive an algorithm that computes the entire solu- tion path of the support vector regression, with essentially the same computational cost as fitting one SVR model. We also propose an unbiased estimate for the degrees of freedom of the SVR model, which allows convenient selection of the regularization parameter.

Authors

Keywords

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Context

Venue
Annual Conference on Neural Information Processing Systems
Archive span
1987-2025
Indexed papers
30776
Paper id
108100098122882505
v2026.09.13