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An ensemble approach applied to classify spam e-mails

机译:一种用于对垃圾邮件进行分类的整体方法

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摘要

Spam e-mails, known as unsolicited e-mail messages, have become an increasing problem for information security. The intrusion of spam e-mails persecute the users and waste the network resources. Traditionally, machine learning and statistical filtering systems are used to filter out spam e-mails. However, there is no unique method can be successfully applied to classify spam e-mails. It is necessary to apply multiple approaches to detect spam and effectively filter out the increasing volumes of spam e-mails. In this paper, an ensemble approach, based on decision tree, support vector machine and back-propagation network, is applied to classify spam e-mails. The proposed approach is based on the characteristics of the spam e-mails. The spam e-mails are categorized into 14 features and then the ensemble approach is performed to classify them. From simulation results, the proposed ensemble approach outperforms other approaches for two test datasets.
机译:垃圾电子邮件被称为未经请求的电子邮件,已成为信息安全方面日益严重的问题。垃圾邮件的入侵迫害用户并浪费网络资源。传统上,机器学习和统计过滤系统用于过滤垃圾邮件。但是,没有可以成功应用独特方法对垃圾邮件进行分类的方法。有必要应用多种方法来检测垃圾邮件并有效过滤掉数量不断增加的垃圾邮件。本文采用基于决策树,支持向量机和反向传播网络的集成方法对垃圾邮件进行分类。提议的方法基于垃圾邮件的特征。垃圾邮件被分类为14个功能,然后采用集成方法对它们进行分类。从仿真结果来看,所提出的集成方法优于两个方法的两个测试数据集。

著录项

  • 来源
    《Expert systems with applications》 |2010年第3期|2197-2201|共5页
  • 作者单位

    Department of Industrial Engineering and Management, National Taipei University of Technology, Taipei, Taiwan;

    Department of Information Management, Chang Gung University, No. 259, Wen-Hwa 1st Road, Tao-Yuan, Taiwan;

    Department of Information Management, Huafan University, No. 1, Huafan Rd., Shihding Township, Taipei County 22301, Taiwan;

    Department of Information Management, Huafan University, No. 1, Huafan Rd., Shihding Township, Taipei County 22301, Taiwan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    E-mail; spam; ensemble; decision tree; back-propagation network; support vector machine;

    机译:电子邮件;垃圾邮件;合奏;决策树;反向传播网络;支持向量机;

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