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Reconciliation of multiple guidelines for decision support: a case study on the multidisciplinary management of breast cancer within the DESIREE project

机译:多种决策支持指南的协调:DESIREE项目中乳腺癌多学科管理的案例研究

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摘要

Breast cancer is the most common cancer among women. DESIREE is a European project which aims at developing web-based services for the management of primary breast cancer by multidisciplinary breast units (BUs). We describe the guideline-based decision support system (GL-DSS) of the project. Various breast cancer clinical practice guidelines (CPGs) have been selected to be concurrently applied to provide state-of-the-art patient-specific recommendations. The aim is to reconcile CPG recommendations with the objective of complementarity to enlarge the number of clinical situations covered by the GL-DSS. Input and output data exchange with the GL-DSS is performed using FHIR. We used a knowledge model of the domain as an ontology on which relies the reasoning process performed by rules that encode the selected CPGs. Semantic web tools were used, notably the Euler/EYE inference engine, to implement the GL-DSS. “Rainbow boxes” are a synthetic tabular display used to visualize the inferred recommendations.
机译:乳腺癌是女性中最常见的癌症。 DESIREE是一个欧洲项目,旨在为多学科乳腺科(BU)开发基于网络的服务,以管理原发性乳腺癌。我们描述了基于指南的项目决策支持系统(GL-DSS)。已经选择了多种乳腺癌临床实践指南(CPG)来同时应用,以提供针对患者的最新技术建议。目的是使CPG建议与补充性目标一致,以扩大GL-DSS涵盖的临床情况的数量。使用FHIR与GL-DSS进行输入和输出数据交换。我们使用领域的知识模型作为本体,依靠该本体由编码所选CPG的规则执行的推理过程。使用语义Web工具(尤其是Euler / EYE推理引擎)来实现GL-DSS。 “彩虹框”是一种合成的表格显示,用于可视化推断的建议。

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