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Automated Concern Exploration in Pandemic Situations - COVID-19 as a Use Case

机译:大流行情况自动关注探索 - Covid-19作为用例

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The recent outbreak of the coronavirus disease (COVID-19) rapidly spreads across most of the countries. To alleviate the panics and prevent any potential social crisis, it is essential to effectively detect public concerns through social media. Twitter, a popular online social network, allows people to share their thoughts, views and opinions towards the latest events and news. In this study, we propose a deep learning-based framework to explore public concerns for COVID-19 automatically, where Twitter has been utilised as the key source of information. We extract and analyse public concerns towards the pandemic. Furthermore, as part of the proposed framework, a knowledge graph of the extracted public concern has been constructed to investigate the interconnections.
机译:最近的冠状病毒疾病(Covid-19)迅速蔓延在大多数国家。 为了减轻恐慌并防止任何潜在的社会危机,必须通过社交媒体有效地检测公众关注。 Twitter是一个受欢迎的在线社交网络,让人们分享他们的思想,意见和意见,以实现最新的活动和新闻。 在这项研究中,我们提出了一个深入的学习框架,自动探讨了Covid-19的公众关注,其中推特已被用作信息源的关键来源。 我们提取并分析公众对大流行的关注。 此外,作为所提出的框架的一部分,已经构建了提取的公众关注的知识图以研究互连。

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