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A new strategy for multifunction myoelectric control

IEEE Transactions on Biomedical Engineering · 1993 · Vol. 40(1) · pp. 82–94
B. HudginsP. ParkerRobert N. Scott

Abstract

This paper describes a novel approach to the control of a multifunction prosthesis based on the classification of myoelectric patterns. It is shown that the myoelectric signal exhibits a deterministic structure during the initial phase of a muscle contraction. Features are extracted from several time segments of the myoelectric signal to preserve pattern structure. These features are then classified using an artificial neural network. The control signals are derived from natural contraction patterns which can be produced reliably with little subject training. The new control scheme increases the number of functions which can be controlled by a single channel of myoelectric signal but does so in a way which does not increase the effort required by the amputee. Results are presented to support this approach.

Muscle activation and electromyography studiesAdvanced Sensor and Energy Harvesting MaterialsNeuroscience and Neural EngineeringComputer scienceArtificial neural networkArtificial intelligenceSIGNAL (programming language)Speech recognitionSignal processingPattern recognition (psychology)Computer hardwareDigital signal processing

MeSH terms

Amputation, SurgicalElectrophysiologyEvaluation Studies as TopicHumansIsometric ContractionIsotonic ContractionModels, NeurologicalMuscle ContractionProsthesis DesignSignal Processing, Computer-AssistedBiasArtifactsNeural Networks, ComputerProstheses and Implants
Citations
2,108
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References
Physiology and Mathematics of Myoelectric Signals
IEEE Transactions on Biomedical Engineering · 1979 · 673 citations
Increased rates of convergence through learning rate adaptation
Neural Networks · 1988 · 1,797 citations
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Applied Optics · 1987 · 715 citations
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