NEURAL-NETWORK MODELS IN EMG DIAGNOSIS

被引:78
作者
PATTICHIS, CS [1 ]
SCHIZAS, CN [1 ]
MIDDLETON, LT [1 ]
机构
[1] CYPRUS INST NEUROL & GENET, NICOSIA, CYPRUS
关键词
Algorithms - Diagnosis - Feature extraction - Mathematical models - Neural networks - Neurology;
D O I
10.1109/10.376153
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In the past years, several computer-aided quantitative motor unit action potential (MUAP) techniques were reported, It is now possible to add to these techniques the capability of automated medical diagnosis so that all data can be processed in an integrated environment. In this study, the parametric pattern recognition (PPR) algorithm that facilitates automatic MUAP feature extraction and Artificial Neural Network (ANN) models are combined for providing an integrated system for the diagnosis of neuromuscular disorders. Two paradigms of learning far training ANN models were investigated, supervised, and unsupervised. For supervised learning, the back propagation algorithm and for unsupervised learning, the Kohonen's self-organizing feature maps algorithm were used. Diagnostic yield for models trained with both procedures was similar and on the order of 80%. However, back propagation models required considerably more computational effort compared to the Kohonen's self-organizing feature map model, Poorer diagnostic performance was obtained when the K-means nearest neighbor clustering algorithm was applied on the same set of data.
引用
收藏
页码:486 / 496
页数:11
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