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A Recommendation Mechanism for Web Publishing Based on Sentiment Analysis of Microblog
Authors:TIAN Pingfang;ZHU Zhonghua;XIONG Li;XU Fangfang;College of Computer Science and Technology  Wuhan University of Science and Technology;Intelligent Information Processing and Real-time Industrial System Hubei Province
Institution:Key Laboratory;
Abstract:Microblog is a social platform with huge user community and mass data. We propose a semantic recommendation mechanism based on sentiment analysis for microblog. Firstly, the keywords and sensibility words in this mechanism are extracted by natural language processing including segmentation, lexical analysis and strategy selection. Then, we query the background knowledge base based on linked open data(LOD) with the basic information of users. The experiment result shows that the accuracy of recommendation is within the range of 70%-89% with sentiment analysis and semantic query. Compared with traditional recommendation method, this method can satisfy users' requirement greatly.
Keywords:
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