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  4. Decision tree-based classifier in providing telehealth service
 
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Decision tree-based classifier in providing telehealth service

Journal
BMC Medical Informatics and Decision Making
Journal Volume
19
Journal Issue
1
Date Issued
2019
Author(s)
CHING-CHIN CHERN  
Chen Y.-J
Hsiao B.
DOI
10.1186/s12911-019-0825-9
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85066609115&doi=10.1186%2fs12911-019-0825-9&partnerID=40&md5=1f36da22ab07e4ac3851427728336f29
https://scholars.lib.ntu.edu.tw/handle/123456789/457946
Abstract
Background: Although previous research showed that telehealth services can reduce the misuse of resources and urban-rural disparities, most healthcare insurers do not include telehealth services in their health insurance schemes. Therefore, no target variable exists for the classification approaches to learn from or train with. The problem of identifying the potential recipients of telehealth services when introducing telehealth services into health welfare or health insurance schemes becomes an unsupervised classification problem without a target variable. Methods: We propose a HDTTCA approach, which is a systematic approach (the main process of HDTTCA involves (1) data set preprocessing, (2) decision tree model building, and (3) predicting and explaining of the most important attributes in the data set for patients who qualify for telehealth service) to identify those who are eligible for telehealth services. Results: This work uses data from the NHIRD provided by the NHIA in Taiwan in 2012 as our research scope, which consist of 55,389 distinct hospitals and 653,209 distinct patients with 15,882,153 outpatient and 135,775 inpatient records. After HDTTCA produces the final version of the decision tree, the rules can be used to assign the values of the target variables in the entire NHIRD. Our data indicate that 3.56% (23,262 out of 653,209) of the patients are eligible for telehealth services in 2012. This study verifies the efficiency and validity of HDTTCA by using a large data set from the NHI of Taiwan. Conclusion: This study conducts a series of experiments 30 times to compare the HDTTCA results with the logistic regression findings by measuring their average performance and determining which model addresses the telehealth patient classification problem better. Four important metrics are used to compare the results. In terms of sensitivity, the decision trees generated by HDTTCA and the logistic regression model are on equal grounds. In terms of accuracy, specificity, and precision, the decision tree generated by HDTTCA provides a better performance than that of the logistic regression model. When HDTTCA is applied, the decision tree model generates a competitive performance and provides clear, easily understandable rules. Therefore, HDTTCA is a suitable choice in solving telehealth service classification problems. ? 2019 The Author(s).
Subjects
Data mining; Data preprocessing; Decision tree; Telehealth service
SDGs

[SDGs]SDG3

[SDGs]SDG11

Other Subjects
adult; article; classifier; controlled study; data mining; decision tree; female; hospital patient; human; major clinical study; male; outpatient; patient coding; Taiwan; target variable; telehealth; validity; classification; statistical analysis; telemedicine; theoretical model; Classification; Data Interpretation, Statistical; Data Mining; Decision Trees; Humans; Models, Theoretical; Taiwan; Telemedicine
Publisher
BioMed Central Ltd.
Type
journal article

臺大位居世界頂尖大學之列,為永久珍藏及向國際展現本校豐碩的研究成果及學術能量,圖書館整合機構典藏(NTUR)與學術庫(AH)不同功能平台,成為臺大學術典藏NTU scholars。期能整合研究能量、促進交流合作、保存學術產出、推廣研究成果。

To permanently archive and promote researcher profiles and scholarly works, Library integrates the services of “NTU Repository” with “Academic Hub” to form NTU Scholars.

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開放取用是從使用者角度提升資訊取用性的社會運動,應用在學術研究上是透過將研究著作公開供使用者自由取閱,以促進學術傳播及因應期刊訂購費用逐年攀升。同時可加速研究發展、提升研究影響力,NTU Scholars即為本校的開放取用典藏(OA Archive)平台。(點選深入了解OA)

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