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Social Media Data Analytics on Telehealth During the COVID-19 Pandemic

机译:Covid-19大流行期间远程医疗的社交媒体数据分析

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Introduction: Physical distancing during the coronavirus Covid-19 pandemic has brought telehealth to the forefront to keep up with patient care amidst an international crisis that is exhausting healthcare resources. Understanding and managing health-related concerns resulting from physical distancing measures are of utmost importance. Objectives: To describe and analyze the volume, content, and geospatial distribution of tweets associated with telehealth during the?Covid-19 pandemic. Methods: We inquired Twitter public data to access tweets related to telehealth from March 30, 2020 to April 6, 2020. We analyzed tweets using natural language processing (NLP) and unsupervised learning methods. Clustering analysis was performed to classify tweets. Geographic tweet distribution was correlated with Covid-19 confirmed cases in the United States. All analyses were carried on the Google Cloud computing service “Google Colab” using Python libraries (Python Software Foundation). Results: A total of 41,329 tweets containing the term “telehealth” were retrieved. The most common terms appearing alongside ‘telehealth’ were “covid”, “health”, “care”, “services”, “patients”, and “pandemic”. Mental health was the most common health-related topic that appeared in our search reflecting a high need for mental healthcare during the pandemic. Similarly, Medicare was the most common appearing health plan mirroring the accelerated access to telehealth and change in coverage policies. The geographic distribution of tweets related to telehealth and having a specific location within the United States (n=19,367) was significantly associated with the number of confirmed Covid-19 cases reported in each state (p0.001). Conclusion: Social media activity is an accurate reflection of disease burden during the Covid-19 pandemic. Widespread adoption of telehealth-favoring policies is necessary and mostly needed to address mental health problems that may arise in areas of high infection and death rates.
机译:介绍:Coronavirus Covid-19流行病中的身体疏远,在国际危机中,在耗尽医疗资源的国际危机中,将远程医疗带到最前沿。理解和管理与身体疏散措施产生的健康有关的关切至关重要。目的:描述和分析与远程医疗期间的发布的音量,内容和地理空间分布?Covid-19流行病。方法:我们向2020年3月30日至4月6日,我们向2020年3月30日询问推特公共数据以访问与远程医生相关的推文。我们使用自然语言处理(NLP)和无监督的学习方法分析了推文。进行聚类分析以对推文进行分类。地理推文分布与美国Covid-19确认案件相关联。使用Python库(Python Software Foundation)在Google Cloud Computing Service“Google Colab”上进行所有分析。结果:检索含有术语“远程医疗”一词的41,329次推文。最常见的术语与“远程医疗”一起是“Covid”,“健康”,“护理”,“服务”,“患者”和“大流行”。心理健康是我们搜索中出现的最常见的健康有关的话题,反映了大流行期间对心理医疗保健的高需求。同样,Medicare是最常见的出现健康计划,镜像加速访问远程医疗和覆盖政策的变化。与远程医疗相关的推文的地理分布和在美国内有特定的位置(n = 19,367)与每种州报告的确诊的Covid-19案件的数量显着相关(P <0.001)。结论:社交媒体活动是在Covid-19大流行期间的疾病负担的准确反映。广泛采用远程偏爱政策是必要的,主要是需要解决可能在高感染和死亡率范围内出现的心理健康问题。

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