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首页> 外文期刊>Biomedical and Health Informatics, IEEE Journal of >Semantic Normalization and Query Abstraction Based on SNOMED-CT and HL7: Supporting Multicentric Clinical Trials
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Semantic Normalization and Query Abstraction Based on SNOMED-CT and HL7: Supporting Multicentric Clinical Trials

机译:基于SNOMED-CT和HL7的语义规范化和查询抽象:支持多中心临床试验

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摘要

Advances in the use of omic data and other biomarkers are increasing the number of variables in clinical research. Additional data have stratified the population of patients and require that current studies be performed among multiple institutions. Semantic interoperability and standardized data representation are a crucial task in the management of modern clinical trials. In the past few years, different efforts have focused on integrating biomedical information. Due to the complexity of this domain and the specific requirements of clinical research, the majority of data integration tasks are still performed manually. This paper presents a semantic normalization process and a query abstraction mechanism to facilitate data integration and retrieval. A process based on well-established standards from the biomedical domain and the latest semantic web technologies has been developed. Methods proposed in this paper have been tested within the EURECA EU research project, where clinical scenarios require the extraction of semantic knowledge from biomedical vocabularies. The aim of this paper is to provide a novel method to abstract from the data model and query syntax. The proposed approach has been compared with other initiatives in the field by storing the same dataset with each of those solutions. Results show an extended functionality and query capabilities at the cost of slightly worse performance in query execution. Implementations in real settings have shown that following this approach, usable interfaces can be developed to exploit clinical trial data outcomes.
机译:眼科数据和其他生物标志物的使用的进步正在增加临床研究中的变量数量。其他数据已将患者人群分层,因此需要在多个机构中进行当前研究。语义互操作性和标准化数据表示是现代临床试验管理中的关键任务。在过去的几年中,不同的努力集中在整合生物医学信息上。由于该领域的复杂性和临床研究的特殊要求,大多数数据集成任务仍然是手动执行的。本文提出了语义规范化过程和查询抽象机制,以促进数据集成和检索。已经开发了一种基于生物医学领域公认标准和最新语义网络技术的过程。本文提出的方法已在EURECA欧盟研究项目中进行了测试,其中临床场景要求从生物医学词汇中提取语义知识。本文的目的是提供一种从数据模型和查询语法中抽象的新颖方法。通过将相同的数据集与这些解决方案中的每一个存储在一起,已将该提议的方法与该领域的其他计划进行了比较。结果显示了扩展的功能和查询功能,但代价是查询执行的性能稍差。在实际环境中的实现方式表明,按照这种方法,可以开发出可用的接口来利用临床试验数据的结果。

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