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基于短语的贝叶斯中文垃圾邮件过滤方法
引用本文:王青松,魏如玉.基于短语的贝叶斯中文垃圾邮件过滤方法[J].计算机科学,2016,43(4):256-259, 269.
作者姓名:王青松  魏如玉
作者单位:辽宁大学信息学院 沈阳110036,辽宁大学信息学院 沈阳110036
基金项目:本文受国家社科青年基金项目:基于空间计量分析的人口规模、结构对资源环境的影响效应研究(13CRK027)资助
摘    要:朴素贝叶斯算法在垃圾邮件过滤领域得到了广泛应用,该算法中,特征提取是一个必不可少的环节。过去针对中文的垃圾邮件过滤方法都以词作为文本的特征项单位进行提取,面对大规模的邮件训练样本,这种算法的时间效率会成为邮件过滤技术中的一个瓶颈。对此,提出一种基于短语的贝叶斯中文垃圾邮件过滤方法,在特征项提取阶段结合文本分类领域提出的新的短语分析方法,按照基本名词短语、基本动词短语、基本语义分析规则,以短语为单位进行提取。通过分别以词和短语为单位进行垃圾邮件过滤的对比测试实验证实了所提出方法的有效性。

关 键 词:垃圾邮件过滤  贝叶斯  特征项提取  基于短语  中文分词
收稿时间:2015/3/31 0:00:00
修稿时间:2015/7/13 0:00:00

Bayesian Chinese Spam Filtering Method Based on Phrases
WANG Qing-song and WEI Ru-yu.Bayesian Chinese Spam Filtering Method Based on Phrases[J].Computer Science,2016,43(4):256-259, 269.
Authors:WANG Qing-song and WEI Ru-yu
Affiliation:College of Information,Liaoning University,Shenyang 110036,China and College of Information,Liaoning University,Shenyang 110036,China
Abstract:Naive Bayesian has been widely used in the field of spam filtering,in which the feature extraction is one of the essential links in the algorithm.In the past,only words were used as text features for the extraction in the method of Chinese spam filtering.In face of large-scale email training samples,time efficiency of this algorithm will become a bottleneck of spam filtering technology.A Bayesian spam filtering algorithm based on phrases was proposed here which combines a new phrase analysis method put forward in text classification field.Phrases are extracted as the unit accor-ding to the rules of basic noun phrases,verb phrases and semantic analysis.Through comparison test experiment of spam filtering based on words and phrases as unit,the effectiveness of the proposed method was confirmed.
Keywords:Spam filtering  Bayesian  Feature extraction  Phrased-based  Chinese word segmentation
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