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An expert system for diabetes prediction using auto tuned multi-layer perceptron

机译:使用自动调整的多层感知器进行糖尿病预测的专家系统

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摘要

Medical Expert Systems is an active research area where data analysts and medical experts are continuously collaborating to make these systems more accurate and therefore, more useful in real life. Recent surveys by World Health Organization indicated a great increase in number of diabetic patients and the deaths that are attributed to diabetes each year. Therefore, early diagnosis of diabetes is a major concern among researchers and practitioners. The paper presents an application of automatic multilayer perceptron (AutoMLP) which is combined with an outlier detection method Enhanced Class Outlier Detection using distance based algorithm to create a novel prediction framework. AutoMLP is an auto-tunable and performs parameter optimization automatically on the run during training process, which otherwise requires human intervention. Our framework performs outlier detection during pre-processing of data. A series of experiments are performed publicly available dataset: UCI (Prima Indian) and system achieved an accuracy of 88.7% which bests the highest reported results.
机译:医学专家系统是一个活跃的研究领域,数据分析师和医学专家正在不断合作以使这些系统更加准确,因此在现实生活中更加有用。世界卫生组织最近的调查表明,每年糖尿病患者的人数和因糖尿病而死亡的人数都大大增加。因此,糖尿病的早期诊断是研究人员和从业人员的主要关注点。本文介绍了一种自动多层感知器(AutoMLP)的应用,该方法与基于基于距离的算法的离群值检测方法增强类离群值检测相结合,创建了一个新颖的预测框架。 AutoMLP是一种自动可调参数,可以在训练过程中自动在运行中执行参数优化,否则需要人工干预。我们的框架在数据预处理期间执行异常值检测。公开的数据集进行了一系列实验:UCI(Prima Indian),系统达到了88.7%的准确性,这是报告结果最高的。

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