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Finding precise causal multi-drug-drug interactions for adverse drug reaction analysis

机译:寻找对不利药物反应分析的精确因果多药物 - 药物相互作用

摘要

Mechanisms are provided for implementing a framework to learn multiple drug-adverse drug reaction associations. The mechanisms receive and analyze patient electronic medical record data and adverse drug reaction data to identify co-occurrences of references to drugs with references to adverse drug reactions (ADRs) to thereby generate candidate rules specifying multiple drug-ADR relationships. The mechanisms filter the candidate rules to remove a subset of one or more rules having confounder drugs specified in the subset of one or more candidate rules, and thereby generate a filtered set of candidate rules. The mechanisms further generate a causal model based on the filtered set of candidate rules. The causal model comprises, for each ADR in a set of ADRs, a corresponding set of one or more rules, each rule specifying a combination of drugs having a causal relationship with the ADR.
机译:提供了实施框架来学习多种药物不良药物反应关联的机制。 该机制接收和分析患者电子医疗记录数据和不良药物反应数据,以识别对药物引用的引用的共同发生,从而产生不良药物反应(ADR),从而产生指定多种药物-ADR关系的候选规则。 该机制过滤候选规则以删除一个或多个规则的子集,其中具有在一个或多个候选规则的子集中指定的混淆药物,从而生成过滤的一组候选规则。 该机制还基于过滤的候选规则集产生了因果模型。 因果模型包括一组ADR中的每个ADR,对应的一个或多个规则,每个规则指定与ADR具有因果关系的药物组合。

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