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COVID-19 Public Opinion and Emotion Monitoring System Based on Time Series Thermal New Word Mining

机译:Covid-19基于时间序列热新词挖掘的Covid-19舆论和情感监测系统

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摘要

With the spread and development of new epidemics, it is of great reference value to identify the changing trends of epidemics in public emotions. We designed and implemented the COVID-19 public opinion monitoring system based on time series thermal new word mining. A new word structure discovery scheme based on the timing explosion of network topics and a Chinese sentiment analysis method for the COVID-19 public opinion environment are proposed. Establish a "Scrapy-Redis-Bloomfilter" distributed crawler framework to collect data. The system can judge the positive and negative emotions of the reviewer based on the comments, and can also reflect the depth of the seven emotions such as Hopeful, Happy, and Depressed. Finally, we improved the sentiment discriminant model of this system and compared the sentiment discriminant error of COVID-19 related comments with the Jiagu deep learning model. The results show that our model has better generalization ability and smaller discriminant error. We designed a large data visualization screen, which can clearly show the trend of public emotions, the proportion of various emotion categories, keywords, hot topics, etc., and fully and intuitively reflect the development of public opinion.
机译:随着新流行病的传播和发展,识别公共情绪中流行病的变化趋势是很大的参考价值。我们基于时间序列热新词挖掘设计和实施了Covid-19舆论监测系统。提出了一种基于网络主题时序爆炸的新词结构发现方案和Covid-19公共意见环境的中国情绪分析方法。建立“Scrapy-Redis-BloomFilter”分布式履带框架以收集数据。该系统可以根据评论判断审阅者的积极和负面情绪,也可以反映七种情绪的深度,如充满希望,快乐和沮丧。最后,我们改善了该系统的情感判别模型,并将Covid-19与嘉古深度学习模型的情感判别误差进行了比较。结果表明,我们的模型具有更好的泛化能力和较小的判别误差。我们设计了一个大型数据可视化屏幕,可以清楚地表明公共情绪的趋势,各种情感类别,关键词,热门话题等的比例,完全直观地反映了舆论的发展。

著录项

  • 来源
    《Computers, Materials & Continua 》 |2020年第3期| 1415-1434| 共20页
  • 作者单位

    School of Information and Communication Engineering Hainan University Haikou 570100 China;

    School of Computer Science and Cyberspace Security Hainan University Haikou 570100 China;

    School of Computer Science and Cyberspace Security Hainan University Haikou 570100 China;

    School of Computer Science and Cyberspace Security Hainan University Haikou 570100 China;

    School of Computer Science and Cyberspace Security Hainan University Haikou 570100 China;

    School of Computer Science and Cyberspace Security Hainan University Haikou 570100 China;

    University of Chinese Academy of Sciences Shenzhen 518000 China;

    National University of Defense Technology Changsha 410000 China;

    Department of Mathematics and Computer Science Northeastern State University Tahlequah USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    COVID-19; public opinion monitoring; data mining; Chinese sentiment analysis; data visualization;

    机译:新冠肺炎;舆论监测;数据挖掘;中国情绪分析;数据可视化;

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