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Exploring the Use of a Network Model in Drug Prescription Support for Dental Clinics

机译:探索牙科诊所药物处方支持中的网络模型的使用

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With more patients taking multiple medications and the increasing digital availability of diagnostic data such as treatment notes and x-ray images, the importance of decision support systems to help dentists in their treatment planning cannot be over emphasised. Based on the hypothesis that a higher similarity ratio between drugs in a drug-pair indicates that the combination of the drug-pair has a higher chance of an adverse interaction, this paper describes an efficient approach in extracting feature vectors from the drugs in a drug-pair to compute the similarity ratio between them. The feature vectors are obtained through a network model where the information of the drugs are represented as nodes and the relationships between them represented as edges. Experimental evaluation of our model yielded a superior F score of 74%. The use of a network model will drive research efforts into more efficient data-mining algorithms for information retrieval, similarity search and machine learning. Since it is important to avoid drug allergies when prescribing drugs, our work when integrated within the clinical work-flow will reduce prescription errors thereby increasing health outcomes for patients.
机译:随着更多患者服用多种药物和增加的诊断数据的数字可用性,如治疗说明和X射线图像,决策支持系统的重要性,以帮助他们治疗计划中的牙医不能强调。基于药物对药物中药物之间的更高相似性的假设表明药物对的组合具有更高的不利相互作用的机会,本文描述了一种有效的方法在药物中从药物中提取特征向量-Pair以计算它们之间的相似比率。特征向量通过网络模型获得,其中药物的信息表示为节点,并且它们之间的关系表示为边缘。我们模型的实验评估产生了优越的F分,74%。使用网络模型将研究努力进入更高效的数据挖掘算法,以获取信息检索,相似性搜索和机器学习。由于在规定药物时避免药物过敏非常重要,因此我们在临床工作流动内集成时的工作将降低处方误差,从而增加患者的健康结果。

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