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Support vectors pre-extracting method based on boundary distance

机译:基于边界距离的支持向量预提取方法

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A novel method called boundary distance is proposed for pre-extracting support vectors. It first calculates the distance between the sample and the other class sample. According to sort distance, the less distance samples, and nearest neighbor samples in the other class, are used as boundary samples. As the boundary samples include most support vectors, it greatly declines the training time without any loss of classification accuracy. Experiments on two artificial data sets and UCI standard data set show that the proposed method is effective.
机译:提出了一种称为边界距离的新方法,用于预先提取支撑件。它首先计算样品和其他类样品之间的距离。根据分类距离,较少的距离样本和其他类中的最近邻样本用作边界样本。随着边界样本包括大多数支持向量,它大大拒绝了训练时间而不损失分类准确性。两个人工数据集和UCI标准数据集的实验表明,所提出的方法是有效的。

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