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A Prototype Neural Network Decision-Support Tool for the Early Diagnosis of Acute Myocardial Infarction

机译:一种用于早期诊断急性心肌梗死的原型神经网络决策支持工具

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摘要

An application of the ARTMAP neural network model to the early diagnosis of acute myocardial infarction is described. Performance results are given for 10 individual ARTMAP networks and for combinations of the networks using "pooled" decision making (the so-called voting strategy). Category nodes are pruned from the trained networks in different ways so as to improve accuracy, sensitivity and specificity respectively. The differently pruned networks are employed in a novel "cascaded" variation of the voting strategy. This allows a partitioning of the test data into predictions with a high and lower certainty of being correct, providing the diagnosing clinician with an indication of the reliability of an individual prediction. Additionally, symbolic rule extraction is performed upon the networks, allowing a domain expert to verify the networks have learned autonomously a valid set of predictive rules for the domain.
机译:描述了ARTMAP神经网络模型在急性心肌梗死的早期诊断中的应用。针对10个独立的ARTMAP网络以及使用“合并”决策(所谓的投票策略)的网络组合给出了性能结果。从受过训练的网络中以不同方式修剪类别节点,以分别提高准确性,敏感性和特异性。在投票策略的新颖“级联”变体中采用了不同修剪的网络。这允许以较高和较低的正确性确定将测试数据划分为预测,从而为诊断临床医生提供了各个预测的可靠性的指示。另外,在网络上执行符号规则提取,从而使领域专家可以验证网络是否已自动学习到该域的一组有效预测规则。

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