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Accurate and reliable diagnosis and classification using probabilistic ensemble simplified fuzzy ARTMAP

机译:使用概率集成简化模糊ARTMAP进行准确可靠的诊断和分类

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摘要

In this paper, an accurate and effective probabilistic plurality voting method to combine outputs from multiple simplified fuzzy ARTMAP (SFAM) classifiers is presented. Five ELENA benchmark problems and five medical benchmark data sets have been used to evaluate the applicability and performance of the proposed probabilistic ensemble simplified fuzzy ARTMAP (PESFAM) network. Among the five benchmark problems in ELENA project, PESFAM outperforms the SFAM and multi-layer perceptron (MLP) classifier. In addition, the effectiveness of the proposed PESFAM is delineated in medical diagnosis applications. For the medical diagnosis and classification problems, PESFAM achieves 100 percent in accuracy, specificity, and sensitivity based on the 10-fold crossvalidation and these results are superior to those from other classification algorithms. In addition, a posteri probability of the predicted class can be used to measure the prediction reliability of PESFAM. The experiments demonstrate the potential of the proposed multiple SFAM classifiers in offering an optimal solution to the data-ordering problem of SFAM implementation and also as an intelligent medical diagnosis tool.
机译:本文提出了一种准确有效的概率多元投票方法,可以将多个简化的模糊ARTMAP(SFAM)分类器的输出进行组合。五个ELENA基准问题和五个医疗基准数据集已用于评估所提出的概率集成简化模糊ARTMAP(PESFAM)网络的适用性和性能。在ELENA项目的五个基准测试问题中,PESFAM优于SFAM和多层感知器(MLP)分类器。另外,在医学诊断应用中描述了所提出的PESFAM的有效性。对于医学诊断和分类问题,基于10倍交叉验证,PESFAM的准确度,特异性和敏感性达到100%,这些结果优于其他分类算法。另外,预测类别的后验概率可用于测量PESFAM的预测可靠性。实验证明了所提出的多个SFAM分类器在为SFAM实现的数据排序问题提供最佳解决方案以及作为智能医疗诊断工具方面的潜力。

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