Intelligent data analysis to interpret major risk factors for diabetic patients with and without ischemic stroke in a small population

被引:0
|
作者
Gurgen, Fikret [1 ]
Gurgen, Nurgul [2 ]
机构
[1] Bogazici Univ, Dept Comp Engn, TR-80815 Bebek, Turkey
[2] Lutfiye Nuri Burat Hosp, Neurol Div, Sultanciftlii Istanbul, Turkey
关键词
Ischemic Stroke; Myocardial Infarction Rate; Polynomial Classifier; Intelligent Data Analysis; Optimum Decision Criterion;
D O I
10.1186/1475-925X-2-5
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
This study proposes an intelligent data analysis approach to investigate and interpret the distinctive factors of diabetes mellitus patients with and without ischemic (non-embolic type) stroke in a small population. The database consists of a total of 16 features collected from 44 diabetic patients. Features include age, gender, duration of diabetes, cholesterol, high density lipoprotein, triglyceride levels, neuropathy, nephropathy, retinopathy, peripheral vascular disease, myocardial infarction rate, glucose level, medication and blood pressure. Metric and non-metric features are distinguished. First, the mean and covariance of the data are estimated and the correlated components are observed. Second, major components are extracted by principal component analysis. Finally, as common examples of local and global classification approach, a k-nearest neighbor and a high-degree polynomial classifier such as multilayer perceptron are employed for classification with all the components and major components case. Macrovascular changes emerged as the principal distinctive factors of ischemic-stroke in diabetes mellitus. Microvascular changes were generally ineffective discriminators. Recommendations were made according to the rules of evidence-based medicine. Briefly, this case study, based on a small population, supports theories of stroke in diabetes mellitus patients and also concludes that the use of intelligent data analysis improves personalized preventive intervention.
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页数:7
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