心血管疾病数据集的分类与预测

Chu-An Tsai, Haiqi Zhu, Haochen Su, Yuni Xia, S. Fang
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引用次数: 0

摘要

心血管疾病是全世界和美国的主要死亡原因。在美国,几乎一半的成年人患有某种形式的心血管疾病。它影响所有年龄、性别、种族和社会经济水平的人。然而,患有心血管疾病的人可能是无症状的,这意味着病人根本没有任何感觉。无症状患者要到病情严重时才会被诊断出来,可能会错过治疗的最佳时机。这个项目的目的是收集心血管疾病的数据,分析数据,并利用它们建立一个预测的机器学习模型,用于早期心脏病检测。采用了多种不同的数据预处理和分类方法,并对其进行了比较,以获得最佳的预测精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classification and Prediction on Cardiovascular disease datasets
Cardiovascular disease is the leading cause of death worldwide and in the U.S. Almost half of adults in the U.S. have some form of cardiovascular disease. It affects people of all ages, sexes, ethnicities and socioeconomic levels. However, people who have Cardiovascular diseases might be asymptomatic, which means the patient does not feeling anything at all. Asymptomatic patients would not get diagnosed until they reach a more serious stage and may miss the best time for treatment. The aim of this project is to collect data on cardiovascular disease, analyze the data and use them to build a predictive machine learning model for early-stage heart disease detection. Multiple different data pre-processing and classification methods have been applied and compared for the best prediction accuracy.
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