TY - JOUR
T1 - Real-Time Closed-Loop Functional Electrical Stimulation Control of Muscle Activation with Evoked Electromyography Feedback for Spinal Cord Injured Patients
AU - Li, Zhan
AU - Guiraud, David
AU - Andreu, David
AU - Gelis, Anthony
AU - Fattal, Charles
AU - Hayashibe, Mitsuhiro
N1 - Funding Information:
This work was partially supported by European Union FP7 EPIONE project, and Zhan Li’s work was partially supported by National Natural Science Foundation of China (NNFSC) under Grant No. 61603078. The authors would like to thank the patients and volunteers for their participation in the experiment and are grateful to the therapists, Vio-laine and Sonia, at PROPARA rehabilitation center for their kind help and assistance.
Publisher Copyright:
© 2018 World Scientific Publishing Company.
PY - 2018/8/1
Y1 - 2018/8/1
N2 - Functional electrical stimulation (FES) is a neuroprosthetic technique to help restore motor function of spinal cord-injured (SCI) patients. Through delivery of electrical pulses to muscles of motor-impaired subjects, FES is able to artificially induce their muscle contractions. Evoked electromyography (eEMG) is used to record such FES-induced electrical muscle activity and presents a form of M-wave. In order to monitor electrical muscle activity under stimulation and ensure safe stimulation configurations, closed-loop FES control with eEMG feedback is needed to be developed for SCI patients who lose their voluntary muscle contraction ability. This work proposes a closed-loop FES system for real-time control of muscle activation on the triceps surae and tibialis muscle groups through online modulating pulse width (PW) of electrical stimulus. Subject-specific time-variant muscle responses under FES are explicitly reflected by muscle excitation model, which is described by Hammerstein system with its input and output being, respectively, PW and eEMG. Model predictive control is adopted to compute the PW based on muscle excitation model which can online update its parameters. Four muscle activation patterns are provided as desired control references to validate the proposed closed-loop FES control paradigm. Real-time experimental results on three able-bodied subjects and five SCI patients in clinical environment show promising performances of tracking the aforementioned reference muscle activation patterns based on the proposed closed-loop FES control scheme.
AB - Functional electrical stimulation (FES) is a neuroprosthetic technique to help restore motor function of spinal cord-injured (SCI) patients. Through delivery of electrical pulses to muscles of motor-impaired subjects, FES is able to artificially induce their muscle contractions. Evoked electromyography (eEMG) is used to record such FES-induced electrical muscle activity and presents a form of M-wave. In order to monitor electrical muscle activity under stimulation and ensure safe stimulation configurations, closed-loop FES control with eEMG feedback is needed to be developed for SCI patients who lose their voluntary muscle contraction ability. This work proposes a closed-loop FES system for real-time control of muscle activation on the triceps surae and tibialis muscle groups through online modulating pulse width (PW) of electrical stimulus. Subject-specific time-variant muscle responses under FES are explicitly reflected by muscle excitation model, which is described by Hammerstein system with its input and output being, respectively, PW and eEMG. Model predictive control is adopted to compute the PW based on muscle excitation model which can online update its parameters. Four muscle activation patterns are provided as desired control references to validate the proposed closed-loop FES control paradigm. Real-time experimental results on three able-bodied subjects and five SCI patients in clinical environment show promising performances of tracking the aforementioned reference muscle activation patterns based on the proposed closed-loop FES control scheme.
KW - Functional electrical stimulation (FES)
KW - evoked electromyography (eEMG)
KW - muscle activation control
KW - spinal cord injury (SCI)
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U2 - 10.1142/S0129065717500630
DO - 10.1142/S0129065717500630
M3 - Article
C2 - 29378445
AN - SCOPUS:85049110107
SN - 0129-0657
VL - 28
JO - International Journal of Neural Systems
JF - International Journal of Neural Systems
IS - 6
M1 - 1750063
ER -