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Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller

The prediction of the joint angle position, especially during tremor bursts, can be useful for detecting, tracking, and forecasting tremors. Thus, this research proposes a new model for predicting the wrist joint position during rhythmic bursts and inter-burst intervals. Since a tremor is an approxi...

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Autores principales: Kobravi, Hamid Reza, Ali, Sara Hemmati, Vatandoust, Masood, Marvi, Rasoul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Medknow Publications & Media Pvt Ltd 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4855885/
https://www.ncbi.nlm.nih.gov/pubmed/27186540
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author Kobravi, Hamid Reza
Ali, Sara Hemmati
Vatandoust, Masood
Marvi, Rasoul
author_facet Kobravi, Hamid Reza
Ali, Sara Hemmati
Vatandoust, Masood
Marvi, Rasoul
author_sort Kobravi, Hamid Reza
collection PubMed
description The prediction of the joint angle position, especially during tremor bursts, can be useful for detecting, tracking, and forecasting tremors. Thus, this research proposes a new model for predicting the wrist joint position during rhythmic bursts and inter-burst intervals. Since a tremor is an approximately rhythmic and roughly sinusoidal movement, neural oscillators have been selected to underlie the proposed model. Two neural oscillators were adopted. Electromyogram (EMG) signals were recorded from the extensor carpi radialis and flexor carpi radialis muscles concurrent with the joint angle signals of a stroke subject in an arm constant-posture. The output frequency of each oscillator was equal to the frequency corresponding to the maximum value of power spectrum related to the rhythmic wrist joint angle signals which had been recorded during a postural tremor. The phase shift between the outputs of the two oscillators was equal to the phase shift between the muscle activation of the wrist flexor and extensor muscles. The difference between the two oscillators’ output signals was considered the main pattern. Along with a proportional compensator, an adaptive neural controller has adjusted the amplitude of the main pattern in such a way so as to minimize the wrist joint prediction error during a stroke patient's tremor burst and a healthy subject's generated artificial tremor. In regard to the range of wrist joint movement during the observed rhythmic motions, a calculated prediction error is deemed acceptable.
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spelling pubmed-48558852016-05-16 Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller Kobravi, Hamid Reza Ali, Sara Hemmati Vatandoust, Masood Marvi, Rasoul J Med Signals Sens Short Communication The prediction of the joint angle position, especially during tremor bursts, can be useful for detecting, tracking, and forecasting tremors. Thus, this research proposes a new model for predicting the wrist joint position during rhythmic bursts and inter-burst intervals. Since a tremor is an approximately rhythmic and roughly sinusoidal movement, neural oscillators have been selected to underlie the proposed model. Two neural oscillators were adopted. Electromyogram (EMG) signals were recorded from the extensor carpi radialis and flexor carpi radialis muscles concurrent with the joint angle signals of a stroke subject in an arm constant-posture. The output frequency of each oscillator was equal to the frequency corresponding to the maximum value of power spectrum related to the rhythmic wrist joint angle signals which had been recorded during a postural tremor. The phase shift between the outputs of the two oscillators was equal to the phase shift between the muscle activation of the wrist flexor and extensor muscles. The difference between the two oscillators’ output signals was considered the main pattern. Along with a proportional compensator, an adaptive neural controller has adjusted the amplitude of the main pattern in such a way so as to minimize the wrist joint prediction error during a stroke patient's tremor burst and a healthy subject's generated artificial tremor. In regard to the range of wrist joint movement during the observed rhythmic motions, a calculated prediction error is deemed acceptable. Medknow Publications & Media Pvt Ltd 2016 /pmc/articles/PMC4855885/ /pubmed/27186540 Text en Copyright: © 2016 Journal of Medical Signals & Sensors http://creativecommons.org/licenses/by-nc-sa/3.0 This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 3.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as the author is credited and the new creations are licensed under the identical terms.
spellingShingle Short Communication
Kobravi, Hamid Reza
Ali, Sara Hemmati
Vatandoust, Masood
Marvi, Rasoul
Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller
title Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller
title_full Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller
title_fullStr Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller
title_full_unstemmed Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller
title_short Prediction of the Wrist Joint Position During a Postural Tremor Using Neural Oscillators and an Adaptive Controller
title_sort prediction of the wrist joint position during a postural tremor using neural oscillators and an adaptive controller
topic Short Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4855885/
https://www.ncbi.nlm.nih.gov/pubmed/27186540
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