SVM-Based Cost-sensitive Classification Algorithm with Error Cost and Class-dependent Reject Cost

Enhui Zheng, Chao Zou, Jian Sun, Le Chen, Ping Li
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引用次数: 3

Abstract

In such real data mining applications as medical diagnosis, fraud detection and fault classification, and so on, the two problems that the error cost is expensive and the reject cost is class-dependent are often encountered. In order to overcome those problems, firstly, the general mathematical description of the Binary Classification Problem with Error Cost and Class-dependent Reject Cost (BCP-EC2RC) is proposed. Secondly, as one of implementation methods of BCP-EC2RC, the new algorithm, named as Cost-sensitive Support Vector Machines with the Error Cost and the Class-dependent Reject Cost (CSVM-EC2RC), is presented. The CSVM-EC2RC algorithm involves two stages: estimating the classification reliability based on trained SVM classifier, and determining the optimal reject rate of positive class and negative class by minimizing the average cost based on the given error cost and class-dependent reject cost. The experiment studies based on a benchmark data set illustrate that the proposed algorithm is effective.
基于svm的错误代价和类相关拒绝代价的代价敏感分类算法
在医疗诊断、欺诈检测和故障分类等实际数据挖掘应用中,经常会遇到错误代价昂贵和拒绝代价依赖于类别的两个问题。为了克服这些问题,首先提出了带有错误代价和类相关拒绝代价的二元分类问题(BCP-EC2RC)的一般数学描述。其次,作为BCP-EC2RC的一种实现方法,提出了带有错误代价和类相关拒绝代价的代价敏感支持向量机(CSVM-EC2RC)算法。CSVM-EC2RC算法包括两个阶段:基于训练好的SVM分类器估计分类可靠性;基于给定的错误代价和类相关的拒绝代价,通过最小化平均代价来确定正类和负类的最优拒绝率。基于一个基准数据集的实验研究表明,该算法是有效的。
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