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VietSentiLex: a sentiment dictionary that considers the polarity of ambiguous sentiment words

机译:VietSentiLex:情感词典,考虑歧义情感词的极性

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The ability to analyze sentiment is a major technology to analyze social media process. The sentiment analysis involves reading and understanding what is being said about a brand as well as advertising campaigns in online services to determine the nature of a product. Because the Vietnamese language has few resources for applying machine learning tasks, use of sentiment dictionaries is required. In this study, a sentiment dictionary called "VietSentiLex" is introduced for the aforementioned task in the Vietnamese language. Most notably, , In this study, instead of applying scores for every word, ambiguous words are considered more carefully as it is periodically positive or negative. Related words such as target nouns or verbs are used as contextual information for a sentiment word. Experiments to compare the performance of our dictionary to others are conducted. We prove that our dictionary has a high potential in predicting the polarity of reviews as compared to other dictionaries. In addition, various challenges and disadvantages of this dictionary are also outlined for future improvement until VietSentiLex can be a commercial product.
机译:分析情绪的能力是分析社交媒体过程的一项主要技术。情绪分析包括阅读和理解关于品牌的说法以及在线服务中的广告活动,以确定产品的性质。由于越南语用于应用机器学习任务的资源很少,因此需要使用情感词典。在这项研究中,为越南语中的上述任务引入了一个名为“ VietSentiLex”的情感词典。最值得注意的是,在本研究中,不明确评估每个单词,而不是为每个单词应用分数,因为它会定期出现积极或消极的情况,因此会被更仔细地考虑。相关词(例如目标名词或动词)用作情感词的上下文信息。进行了将我们的词典与其他词典的性能进行比较的实验。我们证明,与其他词典相比,我们的词典在预测评论的极性方面具有很高的潜力。此外,在VietSentiLex可以成为商业产品之前,还概述了该词典的各种挑战和缺点,以供将来改进。

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