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Transductive Support Vector Machine for Personal Inboxes Spam Categorization

机译:用于个人收件箱垃圾分类的转换支持向量机

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摘要

A method based on transductive support vector machine for personalized spam filtering is proposed.Both labeled emails from the public available source and unlabeled emails in individual inbox are used as the input of the classifier.The problem of the generalizing the training data to the test data in SVM is solved.It provides a way to combine the ability of generalization and adaptation for the spam categorization.The model and parameter selection is stated in order to improve the performance of TSVM.The experiments show that the results of filtering with TSVM are better than the SVM.
机译:提出了一种基于转导支持向量机的个性化垃圾邮件过滤方法,将公开来源的带标签的邮件和单个收件箱中的无标签的邮件作为分类器的输入,将训练数据推广到测试数据中。解决了SVM中的问题,提供了一种将泛化和适应能力相结合的垃圾邮件分类方法。陈述了模型和参数选择以提高TSVM的性能。实验表明,使用TSVM进行过滤的结果更好比SVM。

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