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A safe accelerative approach for pinball support vector machine classifier

机译:弹球支持向量机分类器的安全加速方法

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Support vector machine (SVM) and its extensions have seen many successes in recent years. As an extension to enhance noise insensitivity of SVM, SVM with pinball loss (PinSVM) has attracted much attention. However, existing solvers for PinSVM still have challenges in dealing with large data. In this paper, we propose a safe screening rule for accelerating PinSVM (SSR-PinSVM) to reduce the computational cost. Our proposed rule could identify most inactive instances, and then removes them before solving optimization problem. It is safe in the sense that it guarantees to achieve the exactly same solution as solving original problem. The SSR-PinSVM covers the change of multiple parameters. The existing DVI-SVM can be regarded as a special case of SSR-PinSVM when the parameter tau is constant. Moreover, our screening rule is independent from the solver, thus it can be combined with other fast algorithms. We further provide a dual coordinate descent method for PinSVM (DCDM-PinSVM) as an efficient solver in this paper. Numerical experiments on six artificial data sets, twenty-three benchmark data sets, and a real biological data set have demonstrated the feasibility and validity of our proposed method. (c) 2018 Elsevier B.V. All rights reserved.
机译:支持向量机(SVM)及其扩展在近年来取得了许多成功。作为增强SVM的噪声不敏感性的扩展,带弹珠损耗的SVM(PinSVM)引起了广泛的关注。但是,现有的PinSVM求解器在处理大数据方面仍然面临挑战。在本文中,我们提出了一个安全的筛选规则,用于加速PinSVM(SSR-PinSVM),以降低计算成本。我们提出的规则可以识别大多数不活动的实例,然后在解决优化问题之前将它们删除。从保证可以实现与解决原始问题完全相同的解决方案的角度而言,这是安全的。 SSR-PinSVM涵盖了多个参数的更改。当参数tau为常数时,可以将现有的DVI-SVM视为SSR-PinSVM的特例。此外,我们的筛选规则独立于求解器,因此可以与其他快速算法组合。我们还为PinSVM(DCDM-PinSVM)提供了一种双坐标下降法,作为一种有效的求解器。通过对六个人工数据集,二十三个基准数据集和一个真实生物数据集的数值实验证明了该方法的可行性和有效性。 (c)2018 Elsevier B.V.保留所有权利。

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