Enhanced Cardiovascular Disease Dataset with Data Augmentation
收藏IEEE2026-04-17 收录
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https://ieee-dataport.org/documents/enhanced-cardiovascular-disease-dataset-data-augmentation-0
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This dataset comprises 2 million synthetic samples generated using the Variational Autoencoder-Generative Adversarial Network (VAE-GAN) technique. The dataset is designed to facilitate cardiovascular disease prediction through various demographic, physical, and health-related attributes. It contains essential physiological and behavioral indicators that contribute to cardiovascular health.Dataset Description The dataset consists of the following features:Age (int, days): The age of the individual.Height (int, cm): The height of the individual in centimeters.Weight (float, kg): The weight of the individual in kilograms.Body Mass Index (BMI) (float): Calculated as , providing an indicator of body fat.Gender (categorical code): Encoded as 1 for female and 2 for male.Systolic Blood Pressure (ap_hi) (int): The maximum arterial pressure during heartbeats.Diastolic Blood Pressure (ap_lo) (int): The minimum arterial pressure between heartbeats.Cholesterol (categorical): 1 for normal, 2 for above normal, and 3 for well above normal levels.Glucose (categorical): 1 for normal, 2 for above normal, and 3 for well above normal levels.Smoking (binary): 1 if the individual smokes, 0 otherwise.Alcohol Intake (binary): 1 if the individual consumes alcohol, 0 otherwise.Physical Activity (binary): 1 if the individual engages in regular physical activity, 0 otherwise.Target VariableCardiovascular Disease (cardio) (binary): The presence (1) or absence (0) of cardiovascular disease.This dataset provides a comprehensive set of features that can be used for machine learning models in cardiovascular disease prediction, enabling research and analysis on health-related risk factors and prevention strategies.
提供机构:
Lopez-Saynes, Jose L.; Hernández-de-León, Héctor R.; Escobar-Gomez, Elías N.; Morales-Navarro, Néstor A.



