Literature DB >> 33445431

Does Last Year's Cost Predict the Present Cost? An Application of Machine Leaning for the Japanese Area-Basis Public Health Insurance Database.

Yoshiaki Nomura1, Yoshimasa Ishii2, Yota Chiba2, Shunsuke Suzuki2, Akira Suzuki2, Senichi Suzuki2, Kenji Morita2, Joji Tanabe2, Koji Yamakawa2, Yasuo Ishiwata2, Meu Ishikawa1, Kaoru Sogabe1, Erika Kakuta3, Ayako Okada4, Ryoko Otsuka1, Nobuhiro Hanada1.   

Abstract

The increasing healthcare cost imposes a large economic burden for the Japanese government. Predicting the healthcare cost may be a useful tool for policy making. A database of the area-basis public health insurance of one city was analyzed to predict the medical healthcare cost by the dental healthcare cost with a machine learning strategy. The 30,340 subjects who had continued registration of the area-basis public health insurance of Ebina city during April 2017 to September 2018 were analyzed. The sum of the healthcare cost was JPY 13,548,831,930. The per capita healthcare cost was JPY 446,567. The proportion of medical healthcare cost, medication cost, and dental healthcare cost was 78%, 15%, and 7%, respectively. By the results of the neural network model, the medical healthcare cost proportionally depended on the medical healthcare cost of the previous year. The dental healthcare cost of the previous year had a reducing effect on the medical healthcare cost. However, the effect was very small. Oral health may be a risk for chronic diseases. However, when evaluated by the healthcare cost, its effect was very small during the observation period.

Entities:  

Keywords:  dental healthcare cost; healthcare cost; medical healthcare cost; neural network; zero-inflated model

Mesh:

Year:  2021        PMID: 33445431      PMCID: PMC7827468          DOI: 10.3390/ijerph18020565

Source DB:  PubMed          Journal:  Int J Environ Res Public Health        ISSN: 1660-4601            Impact factor:   3.390


  31 in total

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Authors:  Frank A Scannapieco; Kenneth Shay
Journal:  Dent Clin North Am       Date:  2014-07-22

Review 2.  Oral diseases: a global public health challenge.

Authors:  Marco A Peres; Lorna M D Macpherson; Robert J Weyant; Blánaid Daly; Renato Venturelli; Manu R Mathur; Stefan Listl; Roger Keller Celeste; Carol C Guarnizo-Herreño; Cristin Kearns; Habib Benzian; Paul Allison; Richard G Watt
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3.  Periodontitis, Edentulism, and Risk of Mortality: A Systematic Review with Meta-analyses.

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4.  Correlation between health-care costs and salivary tests.

Authors:  Erika Kakuta; Yoshiaki Nomura; Yoshinobu Naono; Keizo Koresawa; Keita Shimizu; Nobuhiro Hanada
Journal:  Int Dent J       Date:  2013-05-17       Impact factor: 2.607

5.  FINGER (Forming and Identifying New Groups of Expected Risks): developing and validating a new predictive model to identify patients with high healthcare cost and at risk of admission.

Authors:  Juan F Orueta; Arturo García-Alvarez; Juan J Aurrekoetxea; Manuel García-Goñi
Journal:  BMJ Open       Date:  2018-05-31       Impact factor: 2.692

6.  Factors That Affect Oral Care Outcomes for Institutionalized Elderly.

Authors:  Yoshiaki Nomura; Noriko Takei; Takanori Ishii; Koji Takada; Yasuharu Amitani; Hitomi Koganezawa; Shizuko Fukuhara; Keita Asai; Ryuji Uozumi; Kazuhisa Bessho
Journal:  Int J Dent       Date:  2018-12-10

7.  Periodontal Diseases and the Risk of Metabolic Syndrome: An Updated Systematic Review and Meta-Analysis.

Authors:  Romila Gobin; Dan Tian; Qiao Liu; Jianming Wang
Journal:  Front Endocrinol (Lausanne)       Date:  2020-06-09       Impact factor: 5.555

8.  Impact of the Serum Level of Albumin and Self-Assessed Chewing Ability on Mortality, QOL, and ADLs for Community-Dwelling Older Adults at the Age of 85: A 15 Year Follow up Study.

Authors:  Yoshiaki Nomura; Erika Kakuta; Ayako Okada; Ryoko Otsuka; Mieko Shimada; Yasuko Tomizawa; Chieko Taguchi; Kazumune Arikawa; Hideki Daikoku; Tamotsu Sato; Nobuhiro Hanada
Journal:  Nutrients       Date:  2020-10-29       Impact factor: 5.717

9.  Comparison of statistical and machine learning models for healthcare cost data: a simulation study motivated by Oncology Care Model (OCM) data.

Authors:  Madhu Mazumdar; Jung-Yi Joyce Lin; Wei Zhang; Lihua Li; Mark Liu; Kavita Dharmarajan; Mark Sanderson; Luis Isola; Liangyuan Hu
Journal:  BMC Health Serv Res       Date:  2020-04-25       Impact factor: 2.655

10.  Association between oral health and incidence of pneumonia: a population-based cohort study from Korea.

Authors:  Minkook Son; Sangyong Jo; Ji Sung Lee; Dong Hyun Lee
Journal:  Sci Rep       Date:  2020-06-12       Impact factor: 4.379

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