首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Executing Complexity-Increasing Queries in Relational (MySQL) and NoSQL (MongoDB and EXist) Size-Growing ISO/EN 13606 Standardized EHR Databases
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Executing Complexity-Increasing Queries in Relational (MySQL) and NoSQL (MongoDB and EXist) Size-Growing ISO/EN 13606 Standardized EHR Databases

机译:在关系型(MySQL)和NoSQL型(MongoDB和EXist)增长大小的ISO / EN 13606标准化EHR数据库中执行增加复杂性的查询

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摘要

This research shows a protocol to assess the computational complexity of querying relational and non-relational (NoSQL (not only Structured Query Language)) standardized electronic health record (EHR) medical information database systems (DBMS). It uses a set of three doubling-sized databases, i.e. databases storing 5000, 10,000 and 20,000 realistic standardized EHR extracts, in three different database management systems (DBMS): relational MySQL object-relational mapping (ORM), document-based NoSQL MongoDB, and native extensible markup language (XML) NoSQL eXist.The average response times to six complexity-increasing queries were computed, and the results showed a linear behavior in the NoSQL cases. In the NoSQL field, MongoDB presents a much flatter linear slope than eXist.NoSQL systems may also be more appropriate to maintain standardized medical information systems due to the special nature of the updating policies of medical information, which should not affect the consistency and efficiency of the data stored in NoSQL databases.One limitation of this protocol is the lack of direct results of improved relational systems such as archetype relational mapping (ARM) with the same data. However, the interpolation of doubling-size database results to those presented in the literature and other published results suggests that NoSQL systems might be more appropriate in many specific scenarios and problems to be solved. For example, NoSQL may be appropriate for document-based tasks such as EHR extracts used in clinical practice, or edition and visualization, or situations where the aim is not only to query medical information, but also to restore the EHR in exactly its original form.
机译:这项研究显示了一种协议,用于评估查询关系和非关系(NoSQL(不仅是结构化查询语言))标准化电子健康记录(EHR)医疗信息数据库系统(DBMS)的计算复杂性。它在三个不同的数据库管理系统(DBMS)中使用一组三个加倍大小的数据库,即存储5000、10,000和20,000逼真的标准化EHR提取的数据库:关系MySQL对象关系映射(ORM),基于文档的NoSQL MongoDB,以及本机可扩展标记语言(XML)NoSQL eXist。计算了对六个复杂度增加的查询的平均响应时间,结果显示在NoSQL情况下呈线性行为。在NoSQL领域,MongoDB的线性斜率比eXist更平坦。由于医疗信息更新策略的特殊性,NoSQL系统也可能更适合维护标准化的医疗信息系统,这不应该影响医疗信息的一致性和效率。该协议的一个局限性是缺乏改进的关系系统的直接结果,例如具有相同数据的原型关系映射(ARM)。但是,将双倍大小的数据库结果内插到文献和其他已发表的结果中表明,NoSQL系统在许多特定情况下和要解决的问题中可能更合适。例如,NoSQL可能适用于基于文档的任务,例如在临床实践中或版本和可视化中使用的EHR摘录,或者目标不仅是查询医疗信息,而且还以原始形式完全恢复EHR的情况。

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