Unsupervided pattern recognition for the classification of EMG signals

IEEE Trans Biomed Eng. 1999 Feb;46(2):169-78. doi: 10.1109/10.740879.

Abstract

The shapes and firing rates of motor unit action potentials (MUAP's) in an electromyographic (EMG) signal provide an important source of information for the diagnosis of neuromuscular disorders. In order to extract this information from EMG signals recorded at low to moderate force levels, it is required: i) to identify the MUAP's composing the EMG signal, ii) to classify MUAP's with similar shape, and iii) to decompose the superimposed MUAP waveforms into their constituent MUAP's. For the classification of MUAP's two different pattern recognition techniques are presented: i) an artificial neural network (ANN) technique based on unsupervised learning, using a modified version of the self-organizing feature maps (SOFM) algorithm and learning vector quantization (LVQ) and ii) a statistical pattern recognition technique based on the Euclidean distance. A total of 1213 MUAP's obtained from 12 normal subjects, 13 subjects suffering from myopathy, and 15 subjects suffering from motor neuron disease were analyzed. The success rate for the ANN technique was 97.6% and for the statistical technique 95.3%. For the decomposition of the superimposed waveforms, a technique using crosscorrelation for MUAP's alignment, and a combination of Euclidean distance and area measures in order to classify the decomposed waveforms is presented. The success rate for the decomposition procedure was 90%.

Publication types

  • Comparative Study
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Action Potentials / physiology
  • Algorithms
  • Electromyography / classification*
  • Electromyography / methods
  • Electromyography / statistics & numerical data
  • Humans
  • Isometric Contraction
  • Motor Neuron Disease / physiopathology
  • Motor Neurons / physiology
  • Muscle, Skeletal / physiology
  • Muscular Diseases / physiopathology
  • Neural Networks, Computer
  • Pattern Recognition, Automated*
  • Reference Values