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      Training a support vector machine in the primal.

      Neural computation
      Algorithms, Models, Theoretical, Neural Networks (Computer), Nonlinear Dynamics, Pattern Recognition, Automated

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          Abstract

          Most literature on support vector machines (SVMs) concentrates on the dual optimization problem. In this letter, we point out that the primal problem can also be solved efficiently for both linear and nonlinear SVMs and that there is no reason for ignoring this possibility. On the contrary, from the primal point of view, new families of algorithms for large-scale SVM training can be investigated.

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          Author and article information

          Journal
          17381263
          10.1162/neco.2007.19.5.1155

          Chemistry
          Algorithms,Models, Theoretical,Neural Networks (Computer),Nonlinear Dynamics,Pattern Recognition, Automated

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