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New Support Vector Algorithms

Neural Computation · 2000 · Vol. 12(5) · pp. 1207–1245
Bernhard SchölkopfAlex SmolaRobert C. WilliamsonPeter L. Bartlett

Abstract

We propose a new class of support vector algorithms for regression and classification. In these algorithms, a parameter nu lets one effectively control the number of support vectors. While this can be useful in its own right, the parameterization has the additional benefit of enabling us to eliminate one of the other free parameters of the algorithm: the accuracy parameter epsilon in the regression case, and the regularization constant C in the classification case. We describe the algorithms, give some theoretical results concerning the meaning and the choice of nu, and report experimental results.

Face and Expression RecognitionNeural Networks and ApplicationsSparse and Compressive Sensing TechniquesRegularization (linguistics)AlgorithmSupport vector machineRegressionComputer scienceConstant (computer programming)MathematicsArtificial intelligenceStatistics

Funding

  • Deutsche Forschungsgemeinschaft
  • Australian Research Council
Citations
2,793
FWCI
38.21
field-weighted impact
References
54
Percentile
100%
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References
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