使用机器学习预测糖尿病并发症

Yazan Jian, Michel Pasquier, A. Sagahyroon, F. Aloul
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引用次数: 1

摘要

糖尿病(DM)是一种慢性疾病,被认为是危及生命的。随着时间的推移,它可以影响身体的任何部位,导致更严重的并发症,如血脂异常、神经病变和视网膜病变。在这项工作中,应用不同的监督分类算法建立了几种模型来预测和诊断8种糖尿病并发症。并发症包括:代谢综合征、血脂异常、神经病变、肾病、糖尿病足、高血压、肥胖和视网膜病变。本研究使用了位于阿联酋阿吉曼的拉希德糖尿病与研究中心(RCDR)收集的数据集。该数据集包含884条记录和79个特征。采用一些必要的预处理步骤来处理缺失值和数据不平衡问题。测试和评估了多种解决方案。
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Using Machine Learning to Predict Diabetes Complications
Diabetes Mellitus (DM) is a chronic disease that is considered to be life threatening. It can affect any part of the body over time, resulting in more serious complications such as Dyslipidemia, Neuropathy and Retinopathy. In this work, different supervised classification algorithms were applied to build several models to predict and diagnose eight diabetes complications. The complications include: Metabolic Syndrome, Dyslipidemia, Neuropathy, Nephropathy, Diabetic Foot, Hypertension, Obesity, and Retinopathy. For this study, a dataset collected by the Rashid Centre for Diabetes and Research (RCDR) located in Ajman, UAE, was utilized. The dataset contains 884 records with 79 features. Some essential preprocessing steps were applied to handle the missing values and unbalanced data problems. Multiple solutions were tested and evaluated.
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