Neural network realization of support vector methods for pattern classification

Ying Tan, Youshen Xia, Jun Wang · 2000

We apply a recurrent neural network to support vector machine (SVM) training for pattern recognition. Specifically, a primal-dual neural network is exploited to solve the quadratic programming problem encountered in training SVMs. The properties of the network allow one to design SVMs without adjustable network parameters and give a better solution for ill-posed problems.

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