Analisis Klaster Data Pasien Diabetes untuk Identifikasi Pola dan Karakteristik Pasien

Ananda Elang, Satriatama Setyadji, A. Wibowo, Gusti Ngurah, Arnold Matthew, Reyhan Bayu Pratama, Tegar Alwinata Masyhuda, Yohannes Alexander, Agustini Sinaga, Endah Purwanti, Indah Werdiningsih
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Abstract

Diabetes is a significant health problem in Indonesia and the world. To understand the patterns and characteristics of diabetic patients, research was conducted by clustering the data of diabetic patients using the K-Means algorithm. The results of the analysis showed that there were two clusters, with cluster 1 consisting of 755 female patients aged 20-80 years and cluster 2 consisting of 404 male patients aged 40-90 years. The diagnosis of Non-insulin-dependent diabetes mellitus was the most common diagnosis in both clusters, followed by Rheumatoid arthritis in cluster 1 and Respiratory tuberculosis in cluster 2. BMI results in the "ideal" category had the highest frequency in both clusters, but the "less" category was more found in cluster 2. The unique variables in cluster 1 are M13.9 and I15, while the unique variables in cluster 2 are A15 and E11.6. In addition, the analysis of the two clusters shows that the Modopuro and Kebondalem sub-districts appear as the most sub-districts in the two clusters.
一组糖尿病患者数据分析,以确定患者的模式和特征
糖尿病是印度尼西亚乃至全世界的一个重大健康问题。为了了解糖尿病患者的模式和特征,采用K-Means算法对糖尿病患者的数据进行聚类研究。分析结果显示,共有2个聚类,聚类1为755例20 ~ 80岁女性患者,聚类2为404例40 ~ 90岁男性患者。非胰岛素依赖型糖尿病是两组患者最常见的诊断,其次是类风湿关节炎(第1组)和呼吸道结核(第2组)。在两组中,“理想”类别的BMI结果出现的频率最高,而“不理想”类别的BMI结果在第2组中出现的频率更高。集群1的唯一变量为M13.9和I15,集群2的唯一变量为A15和E11.6。此外,对两个集群的分析表明,Modopuro和Kebondalem街道是两个集群中最多的街道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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