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A full smooth semi-support vector machine based on the cubic spline function

机译:基于三次样条函数的全光滑半支持向量机

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The non-smooth problem for the semi-supervised support vector machine optimization model is studied. Since the objective function of the unstrained semi-supervised vector machine model is a non-smooth function. Most fast optimization algorithms can not be applied to solve the semi-supervised vector machine model. We propose a full smooth cubic spline function to approximate the symmetric hinge loss function. The Broyden-Fletcher-Goldfarb-Shanno(BFGS) algorithm is used to solve the new model. The experimental results show that the new model has a better classification performance.
机译:研究了半监督支持向量机优化模型的非光滑问题。由于无应变半监督矢量机模型的目标函数是非平滑函数。大多数快速优化算法无法应用于求解半监督向量机模型。我们提出了一个完全光滑的三次样条函数,以近似对称的铰链损耗函数。 Broyden-Fletcher-Goldfarb-Shanno(BFGS)算法用于求解新模型。实验结果表明,新模型具有更好的分类性能。

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