2023
DOI: 10.3389/fphys.2023.1282295
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Muscle synergies in joystick manipulation

Liming Cai,
Shuhao Yan,
Chuanyun Ouyang
et al.

Abstract: Extracting muscle synergies from surface electromyographic signals (sEMGs) during exercises has been widely applied to evaluate motor control strategies. This study explores the relationship between upper-limb muscle synergies and the performance of joystick manipulation tasks. Seventy-seven subjects, divided into three classes according to their maneuvering experience, were recruited to perform the left and right reciprocation of the joystick. Based on the motion encoder data, their manipulation performance w… Show more

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Cited by 35 publications
(7 citation statements)
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“…The sampling frequencies for kinematics and kinetics were 200 and 1,000 Hz ( Xu et al, 2022 ), respectively. The EMG system (Delsys, Boston, Massachusetts, United States) was used to collect surface muscle activation and force data at a frequency of 1,000 Hz ( Cai et al, 2023 ; Cai et al, 2024 ). Surface electromyography (EMG) sensors were placed on the subjects’ vastus medialis, vastus lateralis, rectus femoris, tibialis anterior, medial gastrocnemius, and lateral gastrocnemius muscles.…”
Section: Methodsmentioning
confidence: 99%
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“…The sampling frequencies for kinematics and kinetics were 200 and 1,000 Hz ( Xu et al, 2022 ), respectively. The EMG system (Delsys, Boston, Massachusetts, United States) was used to collect surface muscle activation and force data at a frequency of 1,000 Hz ( Cai et al, 2023 ; Cai et al, 2024 ). Surface electromyography (EMG) sensors were placed on the subjects’ vastus medialis, vastus lateralis, rectus femoris, tibialis anterior, medial gastrocnemius, and lateral gastrocnemius muscles.…”
Section: Methodsmentioning
confidence: 99%
“…The Vicon Nexus software was employed to export data in c3d format for the acquisition of participants’ kinematic and kinetic data ( Li et al, 2022 ). Subsequently, the data undergoes processing using MATLAB R2022a (The MathWorks, Natick, MA, United States) ( Cai et al, 2023 ), involving operations such as coordinate transformation, low-pass filtering, data extraction, and format conversion. The coordinate systems of kinematic and kinetic data were transformed into the coordinate system used in subsequent simulations.…”
Section: Methodsmentioning
confidence: 99%
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“…Numerous approaches have been looked into to address these issues. Conditional random fields (CRFs) employ greater context in convolutional networks (CNNs) with graphical models to tackle localization problems ( Cai et al, 2023 ; Wang C. et al, 2023 ; Wang Q. et al, 2023 ; Zhao et al, 2023 ). We looked at the “update backgrounds” and the “patch-patch” context (between image sections) ( Sun K. et al, 2019 ).…”
Section: Methodsmentioning
confidence: 99%
“…We processed the raw sensor data for physical and location-based activity separately. In the first stage, we denoised the data using the Butterworth filter [13] and Median filter [14]. In the second stage, we segmented the long sequence signal data into small pieces using the Hamming windowing technique [15].…”
Section: Introductionmentioning
confidence: 99%