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Cloud-Based System for Effective Surveillance and Control of COVID-19: Useful Experiences From Hubei, China

机译:基于云的系统,用于Covid-19的有效监视和控制:中国湖北有用经验

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Background Coronavirus disease (COVID-19) has been an unprecedented challenge to the global health care system. Tools that can improve the focus of surveillance efforts and clinical decision support are of paramount importance. Objective The aim of this study was to illustrate how new medical informatics technologies may enable effective control of the pandemic through the development and successful 72-hour deployment of the Honghu Hybrid System (HHS) for COVID-19 in the city of Honghu in Hubei, China. Methods The HHS was designed for the collection, integration, standardization, and analysis of COVID-19-related data from multiple sources, which includes a case reporting system, diagnostic labs, electronic medical records, and social media on mobile devices. Results HHS supports four main features: syndromic surveillance on mobile devices, policy-making decision support, clinical decision support and prioritization of resources, and follow-up of discharged patients. The syndromic surveillance component in HHS covered over 95% of the population of over 900,000 people and provided near real time evidence for the control of epidemic emergencies. The clinical decision support component in HHS was also provided to improve patient care and prioritize the limited medical resources. However, the statistical methods still require further evaluations to confirm clinical effectiveness and appropriateness of disposition assigned in this study, which warrants further investigation. Conclusions The facilitating factors and challenges are discussed to provide useful insights to other cities to build suitable solutions based on cloud technologies. The HHS for COVID-19 was shown to be feasible and effective in this real-world field study, and has the potential to be migrated.
机译:背景冠状病毒疾病(Covid-19)对全球医疗保健系统致命的挑战是一个前所未有的挑战。可以提高监测努力和临床决策支持的重点的工具至关重要。客观本研究的目的是说明新的医学信息技术如何通过在湖北省洪湖市的Covid-19的洪湖混合系统(HHS)的开发和成功的72小时部署了如何能够有效地控制大流行。中国。方法采用来自多个来源的Covid-19相关数据的收集,集成,标准化和分析,包括案例报告系统,诊断实验室,电子医疗记录和移动设备的社交媒体。结果HHS支持四个主要特点:移动设备上的综合征监控,政策制定决策支持,资源的临床决策支持和优先级,以及排放患者的后续行动。 HHS中的综合征监测成分超过95%以上的人口超过90万人,并提供了控制疫情紧急情况的实时证据。还提供了HHS中的临床决策支持组件,以改善患者护理,并优先考虑有限的医疗资源。但是,统计方法仍然需要进一步的评估,以确认本研究分配的临床效率和适当性,这项认证进一步调查。结论讨论了促进因素和挑战,为其他城市提供了基于云技术建立合适解决方案的有用见解。对于Covid-19的HHS,在这个真实的实地研究中被证明是可行和有效的,并且有可能被迁移。

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