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Data in the time of COVID-19: a general methodology to select and secure a NoSQL DBMS for medical data

机译:Covid-19中的数据:用于为医疗数据选择和保护NoSQL DBMS的一般方法

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Background As the COVID-19 crisis endures and the virus continues to spread globally, the need for collecting epidemiological data and patient information also grows exponentially. The race against the clock to find a cure and a vaccine to the disease means researchers require storage of increasingly large and diverse types of information; for doctors following patients, recording symptoms and reactions to treatments, the need for storage flexibility is only surpassed by the necessity of storage security. The volume, variety, and variability of COVID-19 patient data requires storage in NoSQL database management systems (DBMSs). But with a multitude of existing NoSQL DBMSs, there is no straightforward way for institutions to select the most appropriate. And more importantly, they suffer from security flaws that would render them inappropriate for the storage of confidential patient data. Motivation This paper develops an innovative solution to remedy the aforementioned shortcomings. COVID-19 patients, as well as medical professionals, could be subjected to privacy-related risks, from abuse of their data to community bullying regarding their medical condition. Thus, in addition to being appropriately stored and analyzed, their data must imperatively be highly protected against misuse. Methods This paper begins by explaining the five most popular categories of NoSQL databases. It also introduces the most popular NoSQL DBMS types related to each one of them. Moreover, this paper presents a comparative study of the different types of NoSQL DBMS, according to their strengths and weaknesses. This paper then introduces an algorithm that would assist hospitals, and medical and scientific authorities to choose the most appropriate type for storing patients’ information. This paper subsequently presents a set of functions, based on web services, offering a set of endpoints that include authentication, authorization, auditing, and encryption of information. These functions are powerful and effective, making them appropriate to store all the sensitive data related to patients. Results and Contributions This paper presents an algorithm to select the most convenient NoSQL DBMS for COVID-19 patients, medical staff, and organizations data. In addition, the paper proposes innovative security solutions that eliminate the barriers to utilizing NoSQL DBMSs to store patients’ data. The proposed solutions resolve several security problems including authentication, authorization, auditing, and encryption. After implementing these security solutions, the use of NoSQL DBMSs will become a much more appropriate, safer, and affordable solution to storing and analyzing patients’ data, which would contribute greatly to the medical and research effort against COVID-19. This solution can be implemented for all types of NoSQL DBMSs; implementing it would result in highly securing patients’ data, and protecting them from any downsides related to data leakage.
机译:背景作为Covid-19危机持续存在,病毒继续在全球范围内传播,收集流行病学数据和患者信息的需求也呈指数增长。对阵疾病的时钟的比赛是指疾病的疫苗意味着研究人员需要储存越来越大的多样化类型的信息;对于患者后的医生,记录症状和治疗反应,储存灵活性的需求仅超越了存储安全的必要性。 Covid-19患者数据的卷,品种和可变性需要在NoSQL数据库管理系统(DBMS)中存储。但是,对于众多现有的NoSQL DBMS来说,没有直接的方法来选择最合适的机构。更重要的是,他们遭受安全缺陷,这将使它们不适合存储机密患者数据。动机本文开发了一种创新的解决方案,以补救上述缺点。 Covid-19患者以及医疗专业人员可以遭受隐私相关的风险,从滥用其数据到关于其医疗状况的社区欺凌。因此,除了适当存储和分析之外,它们的数据必须非常受到误用。方法本文首先解释了最受欢迎的NoSQL数据库类别。它还介绍了与它们中的每一个相关的最受欢迎的NoSQL DBMS类型。此外,根据其优点和缺点,本文提出了对不同类型的NoSQL DBMS的比较研究。然后,本文介绍了一种算法,可以帮助医院,医疗和科学当局选择最合适的类型用于储存患者信息。本文随后基于Web服务提供了一组函数,提供了一组端点,包括识别,授权,审计和信息加密。这些功能是强大而有效的,使其适合存储与患者相关的所有敏感数据。结果和贡献本文提出了一种为Covid-19患者,医务人员和组织数据选择最方便的NoSQL DBMS算法。此外,本文提出了创新的安全解决方案,消除了利用NoSQL DBMS存储患者数据的障碍。建议的解决方案解决了几个安全问题,包括身份验证,授权,审计和加密。在实施这些安全解决方案后,使用NoSQL DBMS将成为存储和分析患者数据的更合适,更安全和实惠的解决方案,这将对对Covid-19的医学和研究努力提供大大贡献。可以为所有类型的NoSQL DBMS实现此解决方案;实施它将导致高度保护的患者的数据,并保护它们免受与数据泄漏相关的任何缺陷内容。

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