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2020 | OriginalPaper | Chapter

Capture of the Voluntary Motor Intention from the Electromyography Signal

Authors : Leandro Alexis Hidalgo Torres, Yanexy San Martín Reyes, Juan David Chailloux Peguero

Published in: VIII Latin American Conference on Biomedical Engineering and XLII National Conference on Biomedical Engineering

Publisher: Springer International Publishing

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Abstract

The objective of this work is to automatically identify basic hand movements: Opening, Closing, Bending, Extension, Pronation and Supination, including the Resting condition. Feature extraction was implemented making use of three approaches: time, frequency and time-frequency domains, obtaining the characteristics Mean Absolute Value (MAV), Root Mean Square (RMS), Wave Length (WL), Autoregressive Coefficients (AR) and Discrete Wavelet Transform (DWT). Principal Component Analysis (PCA) was applied for dimensionality reduction and classification was performed using Linear Discriminant Analysis (LDA). As a result it was possible to identify the movements with success rates that reached 92% with the hybrid vectors conformed by the coefficients MAV, RMS and AR.

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Literature
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Metadata
Title
Capture of the Voluntary Motor Intention from the Electromyography Signal
Authors
Leandro Alexis Hidalgo Torres
Yanexy San Martín Reyes
Juan David Chailloux Peguero
Copyright Year
2020
DOI
https://doi.org/10.1007/978-3-030-30648-9_4