DocumentCode :
1205299
Title :
NNERVE: Neural Network Extraction of Repetitive Vectors for Electromyography. I. Algorithm
Author :
Hassoun, Mohamad H. ; Wang, Chuanming ; Spitzer, A. Robert
Author_Institution :
Dept. of Electr. & Comput. Eng., Wayne State Univ., Detroit, MI, USA
Volume :
41
Issue :
11
fYear :
1994
Firstpage :
1039
Lastpage :
1052
Abstract :
Artificial neural network (ANN) based signal processing methods have been shown to have significant robustness in processing complex, degraded, noisy, and unstable signals. A novel approach to automated electromyogram (EMG) signal decomposition, using an ANN processing architecture, is presented here. Due to the lack of a priori knowledge of motor unit action potential (MUAP) morphology, the EMG decomposition must be performed in an unsupervised manner. An ANN classifier, consisting of a multilayer perceptron neural network and employing a novel unsupervised training strategy, is proposed. The ANN learns repetitive appearances of MUAP waveforms from their suspected occurrences in a filtered EMG signal in an autoassociative learning task. The same training waveforms are fed into the trained ANN and the output of the ANN is fed back to its input, giving rise to a dynamic retrieval net classifier. For each waveform in the data, the network discovers a feature vector associated with that waveform. For each waveform, classification is achieved by comparing its feature vector with those of the other waveforms. Firing information of each MUAP is further used to refine the classification results of the ANN classifier. Then, individual MUAP waveform shapes are derived and their firing tables are created.
Keywords :
bioelectric potentials; medical signal processing; muscle; vectors; NNERVE; Neural Network Extraction of Repetitive Vectors for Electromyography; a priori knowledge; autoassociative learning task; complex degraded noisy unstable signals; dynamic retrieval net classifier; feature vector; filtered EMG signal; firing tables; motor unit action potential morphology; multilayer perceptron neural network; training waveforms; unsupervised training strategy; Artificial neural networks; Degradation; Electromyography; Morphology; Multilayer perceptrons; Neural networks; Robustness; Signal processing; Signal processing algorithms; Signal resolution; Algorithms; Diagnosis, Computer-Assisted; Electromyography; Humans; Neural Networks (Computer); Peripheral Nervous System Diseases; Reproducibility of Results; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.335842
Filename :
335842
Link To Document :
بازگشت