Publication | Closed Access
Improving EMG based classification of basic hand movements using EMD
133
Citations
13
References
2013
Year
Unknown Venue
Emg SignalRaw Emg SignalEngineeringBiometricsWearable TechnologyFeature ExtractionMotor ControlEmpirical Mode DecompositionKinesiologyImage AnalysisPattern RecognitionRehabilitation EngineeringHealth SciencesBasic Hand MovementsStatistical Pattern RecognitionGesture RecognitionEeg Signal ProcessingElectromyographyElectrophysiologyHuman MovementPattern Recognition Application
This paper presents a pattern recognition approach for the identification of basic hand movements using surface electromyographic (EMG) data. The EMG signal is decomposed using Empirical Mode Decomposition (EMD) into Intrinsic Mode Functions (IMFs) and subsequently a feature extraction stage takes place. Various combinations of feature subsets are tested using a simple linear classifier for the detection task. Our results suggest that the use of EMD can increase the discrimination ability of the conventional feature sets extracted from the raw EMG signal.
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