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  • 标题:Evaluating Machine Learning Methods for Predicting Diabetes among Female Patients in Bangladesh
  • 本地全文:下载
  • 作者:Badiuzzaman Pranto ; Sk. Maliha Mehnaz ; Esha Bintee Mahid
  • 期刊名称:Information
  • 电子版ISSN:2078-2489
  • 出版年度:2020
  • 卷号:11
  • 期号:8
  • 页码:1-20
  • DOI:10.3390/info11080374
  • 出版社:MDPI Publishing
  • 摘要:Machine Learning has a significant impact on different aspects of science and technology including that of medical researches and life sciences. Diabetes Mellitus, more commonly known as diabetes, is a chronic disease that involves abnormally high levels of glucose sugar in blood cells and the usage of insulin in the human body. This article has focused on analyzing diabetes patients as well as detection of diabetes using different Machine Learning techniques to build up a model with a few dependencies based on the PIMA dataset. The model has been tested on an unseen portion of PIMA and also on the dataset collected from Kurmitola General Hospital, Dhaka, Bangladesh. The research is conducted to demonstrate the performance of several classifiers trained on a particular country’s diabetes dataset and tested on patients from a different country. We have evaluated decision tree, K-nearest neighbor, random forest, and Naïve Bayes in this research and the results show that both random forest and Naïve Bayes classifier performed well on both datasets.
  • 关键词:diabetes prediction; PIMA dataset; Kurmitola general hospital; machine learning; classification diabetes prediction ; PIMA dataset ; Kurmitola general hospital ; machine learning ; classification
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