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Multiple Classifier Systems for Adversarial Classification Tasks

机译:对抗分类任务的多个分类系统

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摘要

Pattern classification systems are currently used in security applications like intrusion detection in computer networks, spam filtering and biometric identity recognition. These are adversarial classification problems, since the classifier faces an intelligent adversary who adap-tively modifies patterns (e.g., spam e-mails) to evade it. In these tasks the goal of a classifier is to attain both a high classification accuracy and a high hardness of evasion, but this issue has not been deeply investigated yet in the literature. We address it under the viewpoint of the choice of the architecture of a multiple classifier system. We propose a measure of the hardness of evasion of a classifier architecture, and give an analytical evaluation and comparison of an individual classifier and a classifier ensemble architecture. We finally report an experimental evaluation on a spam filtering task.
机译:模式分类系统当前用于安全应用程序,例如计算机网络中的入侵检测,垃圾邮件过滤和生物特征识别。这些是对抗性分类问题,因为分类器面临着一个聪明的对手,该对手会主动修改模式(例如垃圾邮件)以逃避它。在这些任务中,分类器的目的是要获得高分类精度和高规避硬度,但是在文献中尚未对此问题进行深入研究。我们从选择多分类器系统的体系结构的角度来解决它。我们提出了一种对分类器体系结构进行规避的方法,并给出了单个分类器与分类器集成体系结构的分析评估和比较。我们最终报告了对垃圾邮件过滤任务的实验评估。

著录项

  • 来源
    《Multiple classifier systems》|2009年|132-141|共10页
  • 会议地点 Reykjavik(IS);Reykjavik(IS)
  • 作者单位

    Dept. of Electrical and Electronic Eng., Univ. of Cagliari Piazza d'Armi, 09123 Cagliari, Italy;

    Dept. of Electrical and Electronic Eng., Univ. of Cagliari Piazza d'Armi, 09123 Cagliari, Italy;

    Dept. of Electrical and Electronic Eng., Univ. of Cagliari Piazza d'Armi, 09123 Cagliari, Italy;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP274.3;
  • 关键词

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