Sentiment analysis using sentence minimization with natural language generation (NLG)

M. Likhar, S. Kasar
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引用次数: 3

Abstract

The analysis of feeling is used to define the attitude of a writer in relation to a subject or the appropriate global polarity of a document. The proposed work is to provide a platform in order to visualize the relative analysis of feedback for some particular product. In doing so, instead of the basic truthful information, the analysis will be done based on comments and comments developed from various sources. In this approach, the analysis of feeling at the document level will be carried out taking into account all aspects in the same way using natural language processing techniques. The present unsupervised method is used for sentence minimization that relies on a Stanford-type dependency for extracting information elements and compressed sentences are generated via a Natural language generation engine (NLG). An automatic evaluation of the same is done and F-scores of about 87.51 is achieved.
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基于句子最小化和自然语言生成(NLG)的情感分析
情感分析用于定义作者对主题的态度或文档的适当整体极性。建议的工作是提供一个平台,以便对某些特定产品的反馈进行可视化的相关分析。在这样做的过程中,分析将基于来自各种来源的评论和评论,而不是基本的真实信息。在这种方法中,将使用自然语言处理技术以同样的方式考虑到所有方面,在文档级别进行感觉分析。目前的无监督方法用于句子最小化,该方法依赖于斯坦福类型的依赖关系来提取信息元素,压缩句子通过自然语言生成引擎(NLG)生成。对其进行了自动评估,f得分约为87.51。
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