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    A Quasi-Newton Method for Large Scale Support Vector Machines

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    This paper adapts a recently developed regularized stochastic version of the Broyden, Fletcher, Goldfarb, and Shanno (BFGS) quasi-Newton method for the solution of support vector machine classification problems. The proposed method is shown to converge almost surely to the optimal classifier at a rate that is linear in expectation. Numerical results show that the proposed method exhibits a convergence rate that degrades smoothly with the dimensionality of the feature vectors.Comment: 5 pages, To appear in International Conference on Acoustics, Speech, and Signal Processing (ICASSP) 201
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