WANG Yan-da,CHEN Wei-tong,PI De-chang,et al.Adaptive Multi-Hop Reading on Memory Neural Network with Selective Coverage Mechanism for Medication Recommendation[J].ACTA ELECTRONICA SINICA,2022,50(04):943-953.
Medication recommendation aims to make effective prescriptions based on electronic healthcare records (EHRs) of patients
and assists caregivers in clinical decision making. Obtaining temporal patterns of patient conditions as well as contextual information contained in EHRs are the key issues for the success of recommendation. Existing methods do not take the difference in the amount of medical records of different patients into account
and fails to change the focus or number of iterations during information extraction according to personalized patient conditions. To address these problems
the medication recommendation model adaptive multi-hop reading with selective coverage mechanism (AMHSC) is proposed. The model stores encoded temporal patterns with memory neural networks (MemNN)
and applies the selective coverage mechanism to balance attention weights over selected information during the attentive multi-hop reading on MemNN. Meanwhile
AMHSC adaptively determines the number of reading hops on MemNN according to personalized patient conditions. Experiments on real-world clinical dataset demonstrate that AMHSC successfully derives important information from EHRs to build informative patient representations for medication recommendation.
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