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Sentiment analysis and classification based on textual reviews

机译:基于文本评论的情感分析和分类

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Mining is used to help people to extract valuable information from large amount of data. Sentiment analysis focuses on the analysis and understanding of the emotions from the text patterns. It identifies the opinion or attitude that a person has towards a topic or an object and it seeks to identify the viewpoint underlying a text span. Sentiment analysis is useful in social media monitoring to automatically characterize the overall feeling or mood of consumers as reflected in social media toward a specific brand or company and determine whether they are viewed positively or negatively on the web. This new form of analysis has been widely adopted in customer relation management especially in the context of complaint management. For automating the task of classifying a single topic textual review, document-level sentiment classification is used for expressing a positive or negative sentiment. So analyzing sentiment using Multi-theme document is very difficult and the accuracy in the classification is less. The document level classification approximately classifies the sentiment using Bag of words in Support Vector Machine (SVM) algorithm. In proposed work, a new algorithm called Sentiment Fuzzy Classification algorithm with parts of speech tags is used to improve the classification accuracy on the benchmark dataset of Movies reviews dataset.
机译:挖掘用于帮助人们从大量数据中提取有价值的信息。情感分析的重点是从文本模式对情感进行分析和理解。它确定一个人对某个主题或对象的看法或态度,并试图确定一个文本范围内的观点。情绪分析在社交媒体监视中很有用,它可以自动表征社交媒体中针对特定品牌或公司的消费者的总体感觉或心情,并确定他们是在网络上看是正面还是负面。这种新的分析形式已在客户关系管理中被广泛采用,尤其是在投诉管理中。为了使对单个主题文本评论进行分类的任务自动化,文档级情感分类用于表达肯定或否定情感。因此,使用多主题文档分析情感非常困难,分类的准确性也较低。文档级别分类使用支持向量机(SVM)算法中的单词袋对情感进行大致分类。在提出的工作中,使用一种新的算法,即带有语音标签的情感模糊分类算法,以提高电影评论数据集基准数据集的分类准确性。

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