- Interactions of Behavioral Changes in Smoking, High-risk Drinking, and Weight Gain in a Population of 7.2 Million in Korea
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Yeon-Yong Kim, Hee-Jin Kang, Seongjun Ha, Jong Heon Park
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J Prev Med Public Health. 2019;52(4):234-241. Published online July 3, 2019
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DOI: https://doi.org/10.3961/jpmph.18.290
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Abstract
Summary
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- Objectives
To identify simultaneous behavioral changes in alcohol consumption, smoking, and weight using a fixed-effect model and to characterize their associations with disease status.
Methods This study included 7 000 529 individuals who participated in the national biennial health-screening program every 2 years from 2009 to 2016 and were aged 40 or more. We reconstructed the data into an individual-level panel dataset with 4 waves. We used a fixed-effect model for smoking, heavy alcohol drinking, and overweight. The independent variables were sex, age, lifestyle factors, insurance contribution, employment status, and disease status.
Results Becoming a high-risk drinker and losing weight were associated with initiation or resumption of smoking. Initiation or resumption of smoking and weight gain were associated with non-high-risk drinkers becoming high-risk drinkers. Smoking cessation and becoming a high-risk drinker were associated with normal-weight participants becoming overweight. Participants with newly acquired diabetes mellitus, ischemic heart disease, stroke, and cancer tended to stop smoking, discontinue high-risk drinking, and return to a normal weight.
Conclusions These results obtained using a large-scale population-based database documented interactions among lifestyle factors over time.
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Summary
Korean summary
이 분석은 흡연, 음주, 체중의 동시적 변화에 대해 패널분석방법론인 고정효과 모형을 이용하여 분석하였으며, 2009년부터 2016년까지 2년 주기로 4차례 모두 건강검진을 수검받은 720만 명을 대상으로 하였다.
흡연, 음주, 체중의 동시적 변화에 대한 방향성을 탐색하여 생활습관 관련 행태가 독자적이 아닌 유기적으로 변화하는 양상을 확인하였다, 또한 당뇨병, 뇌졸중, 암이 신규로 진단되었을 때 행태 변화가 나타나는 것을 확인하였다.
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- Association between Body Mass Index and Risk of Gastric Cancer by Anatomic and Histologic Subtypes in Over 500,000 East and Southeast Asian Cohort Participants
Jieun Jang, Sangjun Lee, Kwang-Pil Ko, Sarah K. Abe, Md. Shafiur Rahman, Eiko Saito, Md. Rashedul Islam, Norie Sawada, Xiao-Ou Shu, Woon-Puay Koh, Atsuko Sadakane, Ichiro Tsuji, Jeongseon Kim, Isao Oze, Chisato Nagata, Shoichiro Tsugane, Hui Cai, Jian-Min Cancer Epidemiology, Biomarkers & Prevention.2022; 31(9): 1727. CrossRef
- Level of Agreement and Factors Associated With Discrepancies Between Nationwide Medical History Questionnaires and Hospital Claims Data
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Yeon-Yong Kim, Jong Heon Park, Hee-Jin Kang, Eun Joo Lee, Seongjun Ha, Soon-Ae Shin
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J Prev Med Public Health. 2017;50(5):294-302. Published online July 20, 2017
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DOI: https://doi.org/10.3961/jpmph.17.024
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7,048
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Abstract
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The objectives of this study were to investigate the agreement between medical history questionnaire data and claims data and to identify the factors that were associated with discrepancies between these data types. Methods: Data from self-reported questionnaires that assessed an individual’s history of hypertension, diabetes mellitus, dyslipidemia, stroke, heart disease, and pulmonary tuberculosis were collected from a general health screening database for 2014. Data for these diseases were collected from a healthcare utilization claims database between 2009 and 2014. Overall agreement, sensitivity, specificity, and kappa values were calculated. Multiple logistic regression analysis was performed to identify factors associated with discrepancies and was adjusted for age, gender, insurance type, insurance contribution, residential area, and comorbidities. Results: Agreement was highest between questionnaire data and claims data based on primary codes up to 1 year before the completion of self-reported questionnaires and was lowest for claims data based on primary and secondary codes up to 5 years before the completion of self-reported questionnaires. When comparing data based on primary codes up to 1 year before the completion of self-reported questionnaires, the overall agreement, sensitivity, specificity, and kappa values ranged from 93.2 to 98.8%, 26.2 to 84.3%, 95.7 to 99.6%, and 0.09 to 0.78, respectively. Agreement was excellent for hypertension and diabetes, fair to good for stroke and heart disease, and poor for pulmonary tuberculosis and dyslipidemia. Women, younger individuals, and employed individuals were most likely to under-report disease. Conclusions: Detailed patient characteristics that had an impact on information bias were identified through the differing levels of agreement.
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