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학술논문

Long-term Predictors of Cardiovascular Disease: A Machine Learning Approach

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영문명
Long-term Predictors of Cardiovascular Disease: A Machine Learning Approach
발행기관
한국계량경제학회
저자명
김영주(Young-Joo Kim)
간행물 정보
『JOURNAL OF ECONOMIC THEORY AND ECONOMETRICS』Vol.34 No.4, 86~114쪽, 전체 29쪽
주제분류
경제경영 > 경제학
파일형태
PDF
발행일자
2023.12.31
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영문 초록

This study investigates long-term cardiovascular disease (CVD) risk predictors for middle-aged and older adults in Korea. Using the Least Absolute Shrinkage and Selection Operator (Lasso) and the double-selection Lasso, this study provides novel evidence that Body Mass Index (BMI) is a single risk factor with long-term predictability for CVD odds ratio, selected apart from age, which is non-modifiable. The lasting effect of BMI on CVD risk remains robust and consistent across different methods and specifications that account for variable selection errors in high-dimensional logit regression and BMI’s time trends. In addition to the long-term predictive role of BMI in CVD risk, the disease burden associated with increased BMI is quantified by comparing the marginal effects of BMI to those of age across various groups. The marginal effect of elevated BMI is more pronounced in men than women and among the employed compared to the non-employed. Leading a healthy lifestyle through the control of BMI is a critical element for preventing CVD based on the empirical findings of the current study.

목차

INTRODUCTION
DATA
MEASURES
METHODS
RESULTS
DISCUSSION
CONCLUSION
REFERENCES

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APA

김영주(Young-Joo Kim). (2023).Long-term Predictors of Cardiovascular Disease: A Machine Learning Approach. JOURNAL OF ECONOMIC THEORY AND ECONOMETRICS, 34 (4), 86-114

MLA

김영주(Young-Joo Kim). "Long-term Predictors of Cardiovascular Disease: A Machine Learning Approach." JOURNAL OF ECONOMIC THEORY AND ECONOMETRICS, 34.4(2023): 86-114

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