基于云运行时(COLAB)的k近邻算法的糖尿病早期检测模拟

Mohamad Jamil, Budi Warsito, Adi Wibowo, Kiswanto Kiswanto
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引用次数: 0

摘要

糖尿病是一种遗传和临床异质性代谢紊乱,表现为胰岛素不足导致的碳水化合物耐量丧失,以高血糖水平为特征。公众对糖尿病的了解程度为39.30%,受公众健康教育和所接受的糖尿病相关信息的影响。早期发现糖尿病可以防止慢性并发症的发展,并允许及时和快速的治疗。本研究的目的是利用基于Cloud-Base Runtime (COLAB)的K-Nearest Neighbors (K-NN)算法模拟糖尿病的早期检测。K=3时的最高准确率为76%,K=3时的最高准确率为68%,K=3时的最高召回率为60%。研究人员使用k - nn作为方法对皮马印第安人糖尿病数据库中的数据进行分类,获得了相当好的准确率值76%,k = 3。
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Diabetes Mellitus Early Detection Simulation using The K-Nearest Neighbors Algorithm with Cloud-Based Runtime (COLAB)
Diabetes Mellitus is a genetically and clinically heterogeneous metabolic disorder with manifestations of loss of carbohydrate tolerance characterized by high blood glucose levels as a result of insulin insufficiency. Public knowledge of diabetes mellitus 39.30% is influenced by public health education and information about diabetes mellitus that the public has ever received. Early detection of diabetes mellitus can prevent the development of chronic complications and allow timely and rapid treatment. The aim of this study is to simulate the early detection of diabetes mellitus with the K-Nearest Neighbors (K-NN) algorithm using Cloud-Base Runtime (COLAB). The highest accuracy is 76% in K=3, the highest precision is 68% in K=3 and the highest recall is 60% in K=3. The researchers used K-NN as a method to classify data from the Pima Indians Diabetes Database and obtained a fairly good accuracy value of 76% with a value of k = 3.
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