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A Study on the Sentiment Analysis of Netizen's Response to Subjects

机译:网民对科目响应的情绪分析研究

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This study proposes a sentiment analysis system to explore the response and the preference of netizens on special social network subjects. Our proposed system consists of 4 procedures: (1) crawls a large amount of network articles and messages for data collection; (2) proposes a vocabulary encoding model based on semantic text encoding method (word embedding) for text processing; (3) develops an emotional learning classification model based on word2vec and support vector machine to classify articles into three emotions; (4) implements sentiment analysis based on emotional learning classification model to obtain the preference of the subjects. Our system can effectively classify the messages of different subjects into different emotional categories to observe the netizens' response to the subject, and further understand the subject's attention and preference. Moreover, our system also focuses on the comparison of preferences between multiple subjects to understand whether a subject is more popular with netizens than other subjects. Then, we can clearly observe and grasp the influence of these subjects.
机译:本研究提出了一种情绪分析系统,探讨了网民对特殊社交网络主题的响应和偏好。我们所提出的系统由4个程序组成:(1)抓取大量网络文章和数据收集消息; (2)提出一种基于语义文本编码方法(Word Embedding)的词汇编码模型,用于文本处理; (3)基于Word2VEC和支持向量机的情感学习分类模型进行将文章分类为三种情绪; (4)基于情绪学习分类模型实现情绪分析,以获得受试者的偏好。我们的系统可以有效地将不同科目的信息分类为不同的情绪类别,以观察网民对该主题的反应,并进一步了解受试者的关注和偏好。此外,我们的系统还专注于多个受试者之间的偏好比较,了解对象是否比其他科目更受欢迎。然后,我们可以清楚地观察并掌握这些受试者的影响。

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