Title :
Setup and procedure for online identification of electrically stimulated muscle with Matlab Simulink
Author :
Ponikvar, Matija ; Munih, Marko
Author_Institution :
Fac. of Electr. Eng., Ljubljana Univ., Slovenia
Abstract :
This paper first describes a laboratory setup for biomechanical experiments that runs within the universal simulation environment Matlab Simulink. The overall system comprises a personal computer, two AMTI (Advanced Mechanical Technology, Inc., Watertown, MA 02472) force plates, Parotec force-sensor shoe insoles, Optotrak system for noncontact 3D position measuring, and a computer-controlled four-channel electrical stimulator. Conceptually, the most important application is implementation of closed-loop electrical stimulation of intact and paralyzed subjects in the laboratory. Second, the system was tested in real-time muscle model identification procedure during a standing experiment. The plantarflexors of three nonimpaired subjects were excited with pseudorandom binary sequences (PRBSs) with small deviations around selected operating points. Electrically stimulated muscles were presented with a linear local dynamic block that was identified with a recursive least-square method (RARX). RARX block was designed with fundamental Matlab Simulink blocks that support real-time operation. Introduced was online estimation of model output, which offers a great manner of instant model validation. Two modes of operation with online validation were tested, In the first mode, the operating point for selected excitation level was identified online. In the second mode, the operating point was measured in preceding experiments. Both procedures resulted in satisfying second-order models that will be used in the adaptive controller design.
Keywords :
adaptive control; binary sequences; biocontrol; biomechanics; closed loop systems; feedback; identification; least squares approximations; medical computing; neuromuscular stimulation; physiological models; time-varying systems; Matlab Simulink; Optotrak system; Parotec force-sensor shoe insoles; adaptive controller design; biomechanical experiments; closed loop control; closed-loop electrical stimulation; computer-controlled stimulator; electrically stimulated muscle; feedback control; force plates; four-channel electrical stimulator; linear local dynamic block; muscle model identification; noncontact 3D position measurement; online identification; paralyzed subjects; plantarflexors; pseudorandom binary sequences; real-time operation; recursive least-square method; second-order models; universal simulation environment; Application software; Computational modeling; Electric variables measurement; Footwear; Force measurement; Mathematical model; Mechanical variables measurement; Microcomputers; Muscles; Position measurement; Adult; Biofeedback (Psychology); Computer Peripherals; Computer Simulation; Electric Stimulation Therapy; Humans; Microcomputers; Motor Neurons; Muscle, Skeletal; Online Systems; Range of Motion, Articular; Spinal Cord Injuries; Therapy, Computer-Assisted;
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
DOI :
10.1109/7333.948458