• DocumentCode
    1430700
  • Title

    Coordinated three-dimensional motion of the head and torso by dynamic neural networks

  • Author

    Kim, Jaywoo ; Hemami, Hooshang

  • Author_Institution
    Samsung Motors Technol. Center, Kyungki-Do, South Korea
  • Volume
    28
  • Issue
    5
  • fYear
    1998
  • Firstpage
    653
  • Lastpage
    666
  • Abstract
    The problem of trajectory tracking control of a three dimensional (3D) model of the human upper torso and head is considered. The torso and the head are modeled as two rigid bodies connected at one point, and the Newton-Euler method is used to derive the nonlinear differential equations that govern the motion of the system. The two-link system is driven by six pairs of muscle like actuators that possess physiologically inspired alpha like and gamma like inputs, and spindle like and Golgi tendon organ like outputs. These outputs are utilized as reflex feedback for stability and stiffness control, in a long loop feedback for the purpose of estimating the state of the system (somesthesis), and as part of the input to the controller. Ideal delays of different duration are included in the feedforward and feedback paths of the system to emulate such delays encountered in physiological systems. Dynamical neural networks are trained to learn effective control of the desired maneuvers of the system. The feasibility of the controller is demonstrated by computer simulation of the successful execution of the desired maneuvers. This work demonstrates the capabilities of neural circuits in controlling highly nonlinear systems with multidelays in their feedforward and feedback paths. The ultimate long range goal of this research is toward understanding the working of the central nervous system in controlling movement. It is an interdisciplinary effort relying on mechanics, biomechanics, neuroscience, system theory, physiology and anatomy, and its short range relevance to rehabilitation must be noted.
  • Keywords
    biomechanics; motion control; neurocontrollers; neurophysiology; nonlinear control systems; position control; Golgi tendon organ like outputs; Newton-Euler method; biomechanics; central nervous system; computer simulation; coordinated three dimensional motion; dynamic neural networks; feedback paths; highly nonlinear systems; human upper torso; long loop feedback; multidelays; muscle like actuators; neural circuits; neuroscience; nonlinear differential equations; physiological systems; reflex feedback; rehabilitation; rigid bodies; somesthesis; stiffness control; three dimensional model; trajectory tracking control; Control systems; Delay; Differential equations; Feedback loop; Humans; Neurofeedback; Output feedback; State feedback; Torso; Trajectory;
  • fLanguage
    English
  • Journal_Title
    Systems, Man, and Cybernetics, Part B: Cybernetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1083-4419
  • Type

    jour

  • DOI
    10.1109/3477.718516
  • Filename
    718516