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Extracting Modifiable Risk Factors from Narrative Preventive Healthcare Guidelines for EHR Integration

机译:从叙事性预防保健指南中提取可修改的风险因素以实现EHR集成

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General criteria of preventive healthcare based on the preventive care guidelines have been integrated with Electronic Health Record (EHR) systems through decision support systems and led to improved performance in healthcare delivery. Advanced integration which considers factors such as ethnicity, social history, medical history, family history need to be investigated. Integrating the preventive healthcare guidelines with the EHR based on above factors requires the extraction of the relevant information from these guidelines using text mining and natural language processing techniques. In this research, we propose a framework to extract information according to the EHR modules. Our results show that the proposed framework successfully extracts terms and concepts, and adequately maps them to the proposed data interchange structure that is based on the EHR functional modules. The extracted information and the populated data interchange structures eases the integration of the modifiable risk factors with the patient's records in the EHR. The proposed framework can be extended to other clinical healthcare guidelines where modifiable risk factors are critical.
机译:基于预防保健指南的预防保健的一般标准已通过决策支持系统与电子健康记录(EHR)系统集成在一起,从而改善了医疗服务的绩效。需要综合考虑种族,社会历史,医学史,家庭史等因素的高级整合。基于上述因素,将预防保健指南与EHR集成在一起,需要使用文本挖掘和自然语言处理技术从这些指南中提取相关信息。在这项研究中,我们提出了一个根据EHR模块提取信息的框架。我们的结果表明,提出的框架成功提取了术语和概念,并将其充分映射到基于EHR功能模块的提出的数据交换结构。提取的信息和填充的数据交换结构简化了可修改的风险因素与EHR中患者记录的集成。提议的框架可以扩展到其他可更改风险因素至关重要的临床医疗保健指南。

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