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A New Expert System for Diabetes Disease Diagnosis Using Modified Spline Smooth Support Vector Machine

机译:一种新的糖尿病疾病诊断专家系统,使用改进的样条光滑支撑矢量机

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In recent years, the uses of intelligent methods in biomedical studies are growing gradually. In this paper, a novel method for diabetes disease diagnosis using modified spline smooth support vector machine (MS-SSVM) is presented. To obtain optimal accuracy results, we used Uniform Design method for selection parameter. The performance of the method is evaluated using 10-fold cross validation accuracy, confusion matrix, sensitivity and specificity. The comparison with previous spline SSVM in diabetes disease diagnosis also was given. The obtained classification accuracy using 10-fold cross validation is 96.58%. The results of this study showed that the modified spline SSVM was effective to detect diabetes disease diagnosis and this is very promising result compared to the previously reported results.
机译:近年来,生物医学研究中智能方法的用途逐渐增长。本文介绍了一种使用改进的样条平滑支撑载体(MS-SSVM)的糖尿病疾病诊断的新方法。为了获得最佳精度结果,我们使用了统一的选择参数设计方法。使用10倍交叉验证精度,混淆矩阵,灵敏度和特异性来评估该方法的性能。还给出了与先前的糖尿病疾病诊断中的样条曲线SSVM的比较。使用10倍交叉验证的所获得的分类精度为96.58%。该研究的结果表明,与先前报道的结果相比,改良的样条状SSVM可有效检测糖尿病疾病诊断,这是非常有前途的结果。

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