Decoding cardiovascular risk in Chinese middle-aged and elderly adults: a 9-year prospective study integrating

Xing-Yu Zhu1, Wei Li1, Guo-Liang Yuan1

  • 1Department of Cardiovascular Medicine, Shu yang Hospital of Traditional Chinese Medicine, Shu Yang, Jiangsu Province, 223600, China.

Insights

A new machine learning model accurately predicts cardiovascular disease risk in Chinese adults, outperforming existing methods. Key factors include waist circumference, triglycerides, and hypertension, offering improved clinical decision-making.

Area of Science:

  • Cardiovascular disease research
  • Machine learning in healthcare
  • Public health epidemiology

Background:

  • Cardiovascular disease is a leading cause of death in China, impacting millions.
  • Existing risk models overestimate risk in Chinese populations, necessitating tailored tools.
  • Machine learning shows promise but lacks clinical interpretability.

Purpose of the Study:

  • Develop and validate a cardiovascular disease risk prediction model for Chinese adults using machine learning and explainable AI.
  • Quantify the contribution of risk factors for improved clinical interpretability.
  • Achieve a balance between predictive accuracy and clinical usability.

Main Methods:

  • Utilized longitudinal data from the China Health and Retirement Longitudinal Study (CHARLS) (2011-2020).
  • Employed recursive feature elimination to identify 18 key predictors from 90 variables.
  • Evaluated 12 machine learning algorithms, with gradient boosting machine showing superior performance.
  • Applied SHAP (SHapley Additive exPlanations) for interpretability and decision curve analysis for clinical utility.

Main Results:

  • The gradient boosting machine model achieved an AUC of 0.798 in the validation cohort.
  • Waist circumference, triglycerides, and hypertension history were identified as primary predictors.
  • SHAP analysis revealed significant heterogeneity in individual risk factor contributions.
  • Decision curve analysis confirmed positive net benefit across a wide range of threshold probabilities.

Conclusions:

  • The developed model significantly outperforms Framingham and China-PAR scores for cardiovascular disease prediction in Chinese adults.
  • Waist circumference, triglycerides, and hypertension are key predictive features, with SHAP providing statistical contribution insights.
  • The model demonstrates clinical utility for both population screening and targeted interventions, pending external validation.
Abstract

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