Chinese SNS blog classification using semantic similarity

Chenye Shi, Jianhua Li, Jieyuan Chen, Xiuzhen Chen
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引用次数: 4

Abstract

Social Network Services have become an important medium for people to communicate ideas and share interests in recent years. Blogs published and shared by users in this virtual world are one of the main sources of user-generated information. Classifying these freestyle blogs can help understand user interests and assist applications such as search and marketing. In this paper, we propose a new method of multi-label classification for Chinese blogs. By applying Dempster-Shafer theory on semantic word similarity algorithms, we achieve automatic classification without use of difficult-to-obtain training sets. Experiments were conducted on real world data from RENREN.com, the biggest SNS (Social Network Services) in China. Results show that the proposed method achieves satisfactory performance in multi-labeling real world SNS blogs as well as corpus.
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基于语义相似度的中文SNS博客分类
近年来,社交网络服务已经成为人们交流思想和分享兴趣的重要媒介。用户在虚拟世界中发布和分享的博客是用户生成信息的主要来源之一。对这些自由式博客进行分类可以帮助了解用户的兴趣,并为搜索和营销等应用程序提供帮助。本文提出了一种新的中文博客多标签分类方法。通过将Dempster-Shafer理论应用于语义词相似度算法,我们在不使用难以获得的训练集的情况下实现了自动分类。实验是在中国最大的社交网络服务人人网的真实数据上进行的。结果表明,该方法在多标签的真实世界SNS博客和语料库中都取得了令人满意的效果。
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