Personalizing the control law of an upper-limb exoskeleton using EMG signal
Treussart, B.; Caron, R.; Geffard, F.; Marin, F.; Vignais, N.
Show abstract
Implementing an intuitive control law for an upper-limb exoskeleton dedicated to force augmentation is a challenging issue in the field of human-robot collaboration. The goal of this study is to adapt an EMG-based control system to a user based on individual caracteristics. To this aim, a method has been designed to tune the parameters of control using objective criteria, improving users feedback. The users response time is used as an objective value to adapt the gain of the controller. The proposed approach was tested on 10 participants during a lifting task. Two different conditions have been used to control the exoskeleton: with a generic gain and with a personalized gain. EMG signals was captured on five muscles to evaluate the efficiency of the conditions and the users adaptation. Results showed a statistically significant reduction of mean muscle activity of the deltoid between the beginning and the end of each situation (28.6 {+/-} 13.5% to 17.2 {+/-} 7.3% of Relative Maximal Contraction for the generic gain and from 24.9 {+/-} 8.5% to 18.0 {+/-} 6.8% of Relative Maximal Contraction for the personalized gain). When focusing on the first assisted movements, the personalized gain induced a mean activity of the deltoid significantly lower (29.0 {+/-} 8.0% of Relative Maximal Contraction and 37.4 {+/-} 9.5% of Relative Maximal Contraction, respectively). Subjective evaluation showed that the system with a personalized gain was perceived as more intuitive, and required less concentration when compared to the system with a generic gain.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Validity and reliability of Kinect v2 for quantifying upper body kinematics during seated reaching 95%
- Using a Motion Sensor to Categorize Low Back Pain Patients: A Machine Learning Approach 94%
- Validity and reliability of inertial measurement units in active range of motion assessment in the hip joint 94%
Similar papers in this journal
- Coordinated human-exoskeleton locomotion emerges from regulating virtual energy 96%
- Validation of two-dimensional video-based inference of finger kinematics with pose estimation 96%
- Randomized, Crossover Clinical Trial on the Safety, Feasibility, and Usability of the ABLE Exoskeleton: A Comparative Study with Knee-Ankle-Foot Orthoses 96%
Similar papers in this journal
- Comparing sparse inertial sensor setups for sagittal-plane walking and running reconstructions 95%
- A Increased trunk flexion in standing up is related to muscle weakness rather than pain avoidance in individuals with unilateral knee pain; a simulation study 95%
- Minimization of metabolic cost of transport predicts changes in gait mechanics over a range of ankle-foot orthosis stiffnesses in individuals with bilateral plantar flexor weakness 95%
Similar papers in this journal
- Mechanical Efficiency Investigation of an ankle-assisted robot for human walking with a backpack-load 97%
- Optimum Push-off During Uneven Walking for Just-in-Time Strategy; Delayed Push-off Exertion is Mechanically Costly 95%
- Sensor Fusion Algorithm to Improve Accuracy of Robotic Superposition Testing using 6-DOF Position Sensors 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.