首页> 外文会议>European Conference on Advances in Case-Based Reasoning(ECCBR 2006); 20060904-07; Fethiye(TR) >Tracking Concept Drift at Feature Selection Stage in SpamHunting: An Anti-spam Instance-Based Reasoning System
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Tracking Concept Drift at Feature Selection Stage in SpamHunting: An Anti-spam Instance-Based Reasoning System

机译:在SpamHunting的特征选择阶段跟踪概念漂移:基于反垃圾邮件实例的推理系统

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摘要

In this paper we propose a novel feature selection method able to handle concept drift problems in spam filtering domain. The proposed technique is applied to a previous successful instance-based reasoning e-mail filtering system called SpamHunting. Our achieved information criterion is based on several ideas extracted from the well-known information measure introduced by Shannon. We show how results obtained by our previous system in combination with the improved feature selection method outperforms classical machine learning techniques and other well-known lazy learning approaches. In order to evaluate the performance of all the analysed models, we employ two different corpus and six well-known metrics in various scenarios.
机译:在本文中,我们提出了一种新颖的特征选择方法,该方法能够处理垃圾邮件过滤域中的概念漂移问题。所提出的技术已应用于先前成功的基于实例的推理电子邮件过滤系统,称为SpamHunting。我们达到的信息标准是基于从Shannon引入的著名信息度量中提取的几个想法。我们展示了我们以前的系统与改进的特征选择方法相结合所获得的结果如何优于传统的机器学习技术和其他知名的惰性学习方法。为了评估所有分析模型的性能,我们在各种情况下采用了两个不同的语料库和六个众所周知的指标。

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