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Analysis of COVID-19 Rebound Based on Natural Language Processing

机译:基于自然语言处理的Covid-19反弹分析

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The novel coronavirus epidemic hasn't finished in the world. The number of people who come down with this disease keeps increasing. Besides, people make some comments on the website, which may be related to the epidemic situation. This work will analyze this relationship and make some suggestions to governments. First, the crawler is used to get the data of public emotion. NLP is the main method in this work, which can classify the words we get based on an emotion dictionary. In the end, we do some further analysis and give the warning line of confirmed cases by regression, whose value is around 30 people.
机译:新型冠状病毒流行病尚未在世界上完成。 随着这种疾病降低的人数不断增加。 此外,人们对网站发表一些评论,可能与疫情有关。 这项工作将分析这种关系,并对各国政府提出一些建议。 首先,履带者用于获得公共情绪的数据。 NLP是这项工作中的主要方法,可以根据情绪词典来分类我们获得的单词。 最后,我们通过回归进行进一步的分析,并给出确认病例的警告线,其价值约为30人。

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