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Published in: International Journal of Data Science and Analytics 4/2018

18-08-2018 | Regular Paper

Drug prescription support in dental clinics through drug corpus mining

Authors: Wee Pheng Goh, Xiaohui Tao, Ji Zhang, Jianming Yong, Wenping Zhang, Haoran Xie

Published in: International Journal of Data Science and Analytics | Issue 4/2018

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Abstract

The rapid increase in the volume and variety of data poses a challenge to safe drug prescription for the dentist. The increasing number of patients that take multiple drugs further exerts pressure on the dentist to make the right decision at point-of-care. Hence, a robust decision support system will enable dentists to make decisions on drug prescription quickly and accurately. Based on the assumption that similar drug pairs have a higher similarity ratio, this paper suggests an innovative approach to obtain the similarity ratio between the drug that the dentist is going to prescribe and the drug that the patient is currently taking. We conducted experiments to obtain the similarity ratios of both positive and negative drug pairs, by using feature vectors generated from term similarities and word embeddings of biomedical text corpus. This model can be easily adapted and implemented for use in a dental clinic to assist the dentist in deciding if a drug is suitable for prescription, taking into consideration the medical profile of the patients. Experimental evaluation of our model’s association of the similarity ratio between two drugs yielded a superior F score of 89%. Hence, such an approach, when integrated within the clinical work flow, will reduce prescription errors and thereby increase the health outcomes of patients.

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Metadata
Title
Drug prescription support in dental clinics through drug corpus mining
Authors
Wee Pheng Goh
Xiaohui Tao
Ji Zhang
Jianming Yong
Wenping Zhang
Haoran Xie
Publication date
18-08-2018
Publisher
Springer International Publishing
Published in
International Journal of Data Science and Analytics / Issue 4/2018
Print ISSN: 2364-415X
Electronic ISSN: 2364-4168
DOI
https://doi.org/10.1007/s41060-018-0149-3

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