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文本挖掘方法分析韩国社交媒体上公众对 COVID-19 疫苗态度的变化。

Text Mining Approaches to Analyze Public Sentiment Changes Regarding COVID-19 Vaccines on Social Media in Korea.

机构信息

Department of Anesthesiology and Pain Medicine, Kangbuk Samsung Hospital, Sungkyunkwan University School of Medicine, Seoul 03181, Korea.

出版信息

Int J Environ Res Public Health. 2021 Jun 18;18(12):6549. doi: 10.3390/ijerph18126549.

Abstract

The COVID-19 pandemic has affected the entire world, resulting in a tremendous change to people's lifestyles. We investigated the Korean public response to COVID-19 vaccines on social media from 23 February 2021 to 22 March 2021. We collected tweets related to COVID-19 vaccines using the Korean words for "coronavirus" and "vaccines" as keywords. A topic analysis was performed to interpret and classify the tweets, and a sentiment analysis was conducted to analyze public emotions displayed within the retrieved tweets. Out of a total of 13,414 tweets, 3509 were analyzed after preprocessing. Eight topics were extracted using the Latent Dirichlet Allocation model, and the most frequently tweeted topic was vaccine hesitation, consisting of fear, flu, safety of vaccination, time course, and degree of symptoms. The sentiment analysis revealed a similar ratio of positive and negative tweets immediately before and after the commencement of vaccinations, but negative tweets were prominent after the increase in the number of confirmed COVID-19 cases. The public's anticipation, disappointment, and fear regarding vaccinations are considered to be reflected in the tweets. However, long-term trend analysis will be needed in the future.

摘要

新型冠状病毒肺炎疫情(COVID-19)已影响全球,导致人们的生活方式发生了巨大变化。本研究于 2021 年 2 月 23 日至 3 月 22 日,在社交媒体上调查了韩国公众对 COVID-19 疫苗的反应。我们使用韩语中表示“冠状病毒”和“疫苗”的关键词,收集了与 COVID-19 疫苗相关的推文。通过主题分析对推文进行解释和分类,并对检索到的推文中显示的公众情绪进行情感分析。在总共 13414 条推文中,经过预处理后分析了 3509 条。使用潜在狄利克雷分配模型提取了 8 个主题,最常被提及的主题是疫苗犹豫,包括恐惧、流感、接种安全性、时间过程和症状程度。情感分析显示,在疫苗接种开始前后,积极和消极推文的比例相似,但在确诊 COVID-19 病例数增加后,负面推文更为突出。公众对疫苗的预期、失望和恐惧似乎反映在这些推文中。然而,未来需要进行长期趋势分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b73/8296514/9719fba99ea4/ijerph-18-06549-g001.jpg

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