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Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network

Objective: This study aims to determine the characteristics of Type 2 diabetic patients who are more likely to cause high-cost medical expenses using the Bayesian network model. Methods: The 2011–2015 receipt data of Iwamizawa city, Japan were collected from the National Health Insurance Database. F...

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Autores principales: Sase, Yuji, Kumagai, Daiki, Suzuki, Teppei, Yamashina, Hiroko, Tani, Yuji, Fujiwara, Kensuke, Tanikawa, Takumi, Enomoto, Hisashi, Aoyama, Takeshi, Nagai, Wataru, Ogasawara, Katsuhiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432350/
https://www.ncbi.nlm.nih.gov/pubmed/32707809
http://dx.doi.org/10.3390/ijerph17155271
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author Sase, Yuji
Kumagai, Daiki
Suzuki, Teppei
Yamashina, Hiroko
Tani, Yuji
Fujiwara, Kensuke
Tanikawa, Takumi
Enomoto, Hisashi
Aoyama, Takeshi
Nagai, Wataru
Ogasawara, Katsuhiko
author_facet Sase, Yuji
Kumagai, Daiki
Suzuki, Teppei
Yamashina, Hiroko
Tani, Yuji
Fujiwara, Kensuke
Tanikawa, Takumi
Enomoto, Hisashi
Aoyama, Takeshi
Nagai, Wataru
Ogasawara, Katsuhiko
author_sort Sase, Yuji
collection PubMed
description Objective: This study aims to determine the characteristics of Type 2 diabetic patients who are more likely to cause high-cost medical expenses using the Bayesian network model. Methods: The 2011–2015 receipt data of Iwamizawa city, Japan were collected from the National Health Insurance Database. From the record, we identified patients with Type 2 diabetes with the following items: age, gender, area, number of days provided medical services, number of diseases, number of medical examinations, annual healthcare expenditures, and the presence or absence of hospitalization. The Bayesian network model was applied to identify the characteristics of the patients, and four observed values were changed using a model for patients who paid at least 3607 USD a year for medical expenses. The changes in the conditional probability of the annual healthcare expenditures and changes in the percentage of patients with high-cost medical expenses were analyzed. Results: After changing the observed value, the percentage of patients with high-cost medical expense reimbursement increased when the following four conditions were applied: the patient “has ever been hospitalized”, “had been provided medical services at least 18 days a year”, “had at least 14 diseases listed on medical insurance receipts”, and “has not had specific health checkups in five years”. Conclusions: To prevent an excessive rise in healthcare expenditures in Type 2 diabetic patients, measures against complications and promoting encouragement for them to undergo specific health checkups are considered as effective.
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spelling pubmed-74323502020-08-24 Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network Sase, Yuji Kumagai, Daiki Suzuki, Teppei Yamashina, Hiroko Tani, Yuji Fujiwara, Kensuke Tanikawa, Takumi Enomoto, Hisashi Aoyama, Takeshi Nagai, Wataru Ogasawara, Katsuhiko Int J Environ Res Public Health Article Objective: This study aims to determine the characteristics of Type 2 diabetic patients who are more likely to cause high-cost medical expenses using the Bayesian network model. Methods: The 2011–2015 receipt data of Iwamizawa city, Japan were collected from the National Health Insurance Database. From the record, we identified patients with Type 2 diabetes with the following items: age, gender, area, number of days provided medical services, number of diseases, number of medical examinations, annual healthcare expenditures, and the presence or absence of hospitalization. The Bayesian network model was applied to identify the characteristics of the patients, and four observed values were changed using a model for patients who paid at least 3607 USD a year for medical expenses. The changes in the conditional probability of the annual healthcare expenditures and changes in the percentage of patients with high-cost medical expenses were analyzed. Results: After changing the observed value, the percentage of patients with high-cost medical expense reimbursement increased when the following four conditions were applied: the patient “has ever been hospitalized”, “had been provided medical services at least 18 days a year”, “had at least 14 diseases listed on medical insurance receipts”, and “has not had specific health checkups in five years”. Conclusions: To prevent an excessive rise in healthcare expenditures in Type 2 diabetic patients, measures against complications and promoting encouragement for them to undergo specific health checkups are considered as effective. MDPI 2020-07-22 2020-08 /pmc/articles/PMC7432350/ /pubmed/32707809 http://dx.doi.org/10.3390/ijerph17155271 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sase, Yuji
Kumagai, Daiki
Suzuki, Teppei
Yamashina, Hiroko
Tani, Yuji
Fujiwara, Kensuke
Tanikawa, Takumi
Enomoto, Hisashi
Aoyama, Takeshi
Nagai, Wataru
Ogasawara, Katsuhiko
Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network
title Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network
title_full Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network
title_fullStr Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network
title_full_unstemmed Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network
title_short Characteristics of Type-2 Diabetics Who are Prone to High-Cost Medical Care Expenses by Bayesian Network
title_sort characteristics of type-2 diabetics who are prone to high-cost medical care expenses by bayesian network
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432350/
https://www.ncbi.nlm.nih.gov/pubmed/32707809
http://dx.doi.org/10.3390/ijerph17155271
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