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Chinese Long Text Sentiment Analysis Based on the Combination of Title and Topic Sentences

机译:基于标题和主题句子的结合的中国长文本情绪分析

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The long text in our study involves a complete discourse structure with a title and approximately 1500 Chinese characters within. Long text sentiment analysis has faced a lot of difficulties on the grounds that a long text often comprises multiple sentiments and diverse focuses. This paper proposes to analyze the sentiment of long texts based on the combination of title and topic sentence. Based on the fine-labeled texts, the analysis extracted the important features of topic sentences, such as location, feature words, degree of topic relevance and emotional words. Then two topic sentences were extracted from each text that can best represent the topic through weighted calculation of these multi-dimensional features. Next this paper combined the two topic sentences with the title to complete the sentiment analysis of the whole document. The topic sentence extraction method has achieved good results in the task of extracting and judging key emotional sentences of news in the 6th COAE (Chinese Opinion Analysis Evaluation) (2014), which shows that the method is effective. This method has been put into practice in the National Language Public Opinion Monitoring system, with an accuracy of 0.82.
机译:我们研究中的长篇文章涉及一个完整的话语结构,其中包含标题和大约1500个汉字。长篇文本情绪分析面临着大量困难,即长篇文本经常包括多种情绪和多样的重点。本文提出根据标题和主题句子的组合分析长文本的情绪。基于精细标记的文本,分析提取了主题句子的重要特征,例如位置,特征词,主题相关性和情绪词语。然后,从每个文本中提取两个主题句子,这些句子最好通过这些多维功能的加权计算来最佳地代表主题。接下来,本文将两个主题句子与标题组合完成整个文档的情感分析。主题句提取方法取得了良好的效果,在第六赛(汉语舆论分析评估)(2014)中提取和判断新闻的关键情感判决的任务良好,表明该方法是有效的。该方法已在国家语言舆论监测系统中实施,精度为0.82。

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