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基于概率图模型的文本对象情感分析
引用本文:赵鸿艳,王素格,许超逸.基于概率图模型的文本对象情感分析[J].电脑开发与应用,2014(4):241-245,26.
作者姓名:赵鸿艳  王素格  许超逸
作者单位:[1]山西大学数学科学学院,太原030006 [2]山西大学计算机与信息技术学院,太原030006 [3]山西大学计算智能与中文信息处理教育部重点实验室,太原030006
基金项目:国家自然科学基金资助项目(61175067,61272095,60970014);山西省科技攻关项目(20110321027-02)
摘    要:情感分析旨在从文本数据中自动识别主观情感,即文本中表达的观点、态度、感受等,在线评论通常都涉及特定的对象,通过在JST模型基础上加入对象层提出了一种无监督的对象情感联合模型(UOSU model),UOSU模型对每个词同时采样对象、情感和主题标签,最终得到各个主题的对象情感词以及文本的对象情感分布。在汽车评论数据集上进行的情感分类实验取得了74.19%的精确率和73.97%的召回率。

关 键 词:对象  情感分析  主题

Object and Sentiment Analysis of Texts Based on Probabilistic Graphical Model
ZHAO Hong-yan,WANG Su-ge,XU Chao-yi.Object and Sentiment Analysis of Texts Based on Probabilistic Graphical Model[J].Computer Development & Applications,2014(4):241-245,26.
Authors:ZHAO Hong-yan  WANG Su-ge  XU Chao-yi
Affiliation:1. School of Mathematics Science, Shanxi University, Taiyuan 030006, China;2. School of Computer and Information Technology, Shanxi University, Taiyuan 030006, China;3. Key Laboratory of Computational Intelligence and Chinese Information Processing of Ministry of Education, Shanxi University, Taiyuan 030006, China)
Abstract:Sentiment analysis aims to automatically detect the subjective sentiment such as opinions, attitudes and feelings in texts. Online review usually relates to the specific object, in order to detect object information from texts, this paper proposes an unsupervised object and sentiment unification model (UOSU model), which has added a plate for object based on the JST model. UOSU model is fully unsupervised and detects object, sentiment and topic simultaneously from text. Using the UOSU model can achieve words generated by the specific object, sentiment and topic. Besides, the object and sentiment for a text can be obtained at the same time. The model is evaluated on the car review dataset to classify the review sentiment polarity, and the sentiment classification experiments achieves accuracy of 74.19%and recall rate of 73.97%.
Keywords:object  sentiment analysis  topic
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