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Adverse Drug Reaction Discovery from Electronic Health Records with Deep Neural Networks.

Publication ,  Conference
Zhang, W; Peissig, P; Kuang, Z; Page, D
Published in: Proc ACM Conf Health Inference Learn (2020)
April 2020

Adverse drug reactions (ADRs) are detrimental and unexpected clinical incidents caused by drug intake. The increasing availability of massive quantities of longitudinal event data such as electronic health records (EHRs) has redefined ADR discovery as a big data analytics problem, where data-hungry deep neural networks are especially suitable because of the abundance of the data. To this end, we introduce neural self-controlled case series (NSCCS), a deep learning framework for ADR discovery from EHRs. NSCCS rigorously follows a self-controlled case series design to adjust implicitly and efficiently for individual heterogeneity. In this way, NSCCS is robust to time-invariant confounding issues and thus more capable of identifying associations that reflect the underlying mechanism between various types of drugs and adverse conditions. We apply NSCCS to a large-scale, real-world EHR dataset and empirically demonstrate its superior performance with comprehensive experiments on a benchmark ADR discovery task.

Duke Scholars

Published In

Proc ACM Conf Health Inference Learn (2020)

DOI

Publication Date

April 2020

Volume

2020

Start / End Page

30 / 39

Location

United States
 

Citation

APA
Chicago
ICMJE
MLA
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Zhang, W., Peissig, P., Kuang, Z., & Page, D. (2020). Adverse Drug Reaction Discovery from Electronic Health Records with Deep Neural Networks. In Proc ACM Conf Health Inference Learn (2020) (Vol. 2020, pp. 30–39). United States. https://doi.org/10.1145/3368555.3384459
Zhang, Wei, Peggy Peissig, Zhaobin Kuang, and David Page. “Adverse Drug Reaction Discovery from Electronic Health Records with Deep Neural Networks.” In Proc ACM Conf Health Inference Learn (2020), 2020:30–39, 2020. https://doi.org/10.1145/3368555.3384459.
Zhang W, Peissig P, Kuang Z, Page D. Adverse Drug Reaction Discovery from Electronic Health Records with Deep Neural Networks. In: Proc ACM Conf Health Inference Learn (2020). 2020. p. 30–9.
Zhang, Wei, et al. “Adverse Drug Reaction Discovery from Electronic Health Records with Deep Neural Networks.Proc ACM Conf Health Inference Learn (2020), vol. 2020, 2020, pp. 30–39. Pubmed, doi:10.1145/3368555.3384459.
Zhang W, Peissig P, Kuang Z, Page D. Adverse Drug Reaction Discovery from Electronic Health Records with Deep Neural Networks. Proc ACM Conf Health Inference Learn (2020). 2020. p. 30–39.

Published In

Proc ACM Conf Health Inference Learn (2020)

DOI

Publication Date

April 2020

Volume

2020

Start / End Page

30 / 39

Location

United States