一种用于医学诊断的大规模记忆神经网络

D. Graupe, H. Kordylewski
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引用次数: 9

摘要

探讨了LAMSTAR网络在一个医学诊断案例中的应用具体来说,是泌尿科的医学诊断。LAMSTAR网络是一个基于SOM (self - organization - map)模块的自训练网络。它采用链路权重向量阵列在网络中垂直和水平传递信息,以方便快速检索存储器。对于诊断,LAMSTAR网络显示诊断结果,并建议进行具体的进一步测试。此外,网络内插/外推那些在输入词中不存在的子词(汽车系统的状态)。作为一种医疗诊断工具,LAMSTAR网络可以评估患者的病情,并在肾结石切除后进行长期预测。LAMSTAR网络试图通过分析100个患者(输入词)之间的相关性来预测治疗的结果(失败/成功),每个患者由17个子词描述。因此,本文阐述了LAMSTAR网络的应用范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A large scale memory (LAMSTAR) neural network for medical diagnosis
Discusses applications of the LAMSTAR network to a medical diagnostic case; specifically, to a urologic medical diagnosis. The LAMSTAR network is a self trained network based on SOM (Self-Organizing-Map) modules. It employs arrays of link-weight vectors to channel information vertically and horizontally through the network to facilitate fast memory retrieval. For diagnosis, the LAMSTAR network displays the diagnosis with suggestions to perform specific further tests. Also, the network interpolate/extrapolate those subwords (states of car systems), that were not present in the input word. As a medical diagnostic tool, the LAMSTAR network evaluates patients' conditions and long term forecasting after removal of kidney stones. The LAMSTAR network attempts to predict the treatment's results (failure/success) by analyzing the correlations among 100 patients (input words), each described by 17 subwords. The paper thus illustrates the scope of applications of the LAMSTAR network.
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