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A Hybrid Recommender System for Patient-Doctor Matchmaking in Primary Care

机译:初级保健中医患配对的混合推荐系统

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We partner with a leading European healthcare provider and design a mechanism to match patients with family doctors in primary care. We define the matchmaking process for several distinct use cases given different levels of available information about patients. Then, we adopt a hybrid recommender system to present each patient a list of family doctor recommendations. In particular, we model patient trust of family doctors using a large-scale dataset of consultation histories, while accounting for the temporal dynamics of their relationships. Our proposed approach shows higher predictive accuracy than both a heuristic baseline and a collaborative filtering approach, and the proposed trust measure further improves model performance.
机译:我们与一家领先的欧洲医疗服务提供商合作,并设计了一种机制,使患者与初级保健中的家庭医生相匹配。给定关于患者的可用信息的不同级别,我们为几个不同的用例定义了匹配过程。然后,我们采用混合推荐系统,以向每个患者提供家庭医生推荐的列表。特别是,我们使用大规模的咨询历史数据集来模拟家庭医生的患者信任,同时考虑他们之间关系的时间动态。与启发式基线和协作过滤方法相比,我们提出的方法显示出更高的预测准确性,并且提出的信任度量进一步提高了模型性能。

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