Using Artificial Intelligence and Big Data-Based Documents to Optimize Medical Coding

Joseph Noussa-Yao, D. Heudes, P. Degoulet
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Abstract

Clinical information systems (CISs) in some hospitals streamline the data management from data warehouses. These warehouses contain heterogeneous information from all medical specialties that offer patient care services. It is increasingly difficult to manage large volumes of data in a specific clinical context such as quality coding of medical services. The document-based not only SQL (NoSQL) model can provide an accessible, extensive, and robust coding data management framework while maintaining certain flexibility. This paper focuses on the design and implementation of a big data-coding warehouse, and it also defines the rules to convert a conceptual model of coding into a document-oriented logical model. Using that model, we implemented and analyzed a big data-coding warehouse via the MongoDB database and evaluated it using data research mono- and multi-criteria and then calculated the precision of our model.
利用人工智能和基于大数据的文档优化医疗编码
一些医院的临床信息系统(CISs)简化了数据仓库中的数据管理。这些仓库包含来自提供患者护理服务的所有医疗专业的异构信息。在特定的临床环境中管理大量数据(如医疗服务的质量编码)越来越困难。基于文档的SQL (NoSQL)模型可以提供可访问的、广泛的和健壮的编码数据管理框架,同时保持一定的灵活性。本文重点研究了一个大数据编码仓库的设计与实现,并定义了将编码的概念模型转化为面向文档的逻辑模型的规则。使用该模型,我们通过MongoDB数据库实现和分析了一个大型数据编码仓库,并使用数据研究的单标准和多标准对其进行了评估,然后计算了我们模型的精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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