• DocumentCode
    1344403
  • Title

    Stepping over obstacles during locomotion: insights from multiobjective optimization on set of input parameters

  • Author

    Armand, Mehran ; Huissoon, Jan P. ; Patla, Aftab E.

  • Author_Institution
    Dept. of Mech. Eng., Waterloo Univ., Ont., Canada
  • Volume
    6
  • Issue
    1
  • fYear
    1998
  • fDate
    3/1/1998 12:00:00 AM
  • Firstpage
    43
  • Lastpage
    52
  • Abstract
    In this study the authors investigate possible objectives that the central nervous system (CNS) may consider in planning a strategy for stepping over an obstacle. A link segment simulation model has been developed based on Lagrangian dynamics, with which muscle force inputs can be optimized to best satisfy the postulated objectives for landing stability, obstacle clearance, and efficiency of the movement. A direct optimization approach with multiobjective criteria based on the kinematic and kinetic characteristics of the swing phase of locomotion is used in the simulation. The role of initial conditions at toe-off and biarticular muscle forces during the swing phase was also investigated. The optimization was performed for both leading limb and the trailing limb during the swing phase. The simulation results demonstrate that the use of biarticular muscles is sufficient to clear a range of obstacles with the trailing limb (obstacle encountered during early swing). Stride length or landing stability objectives need not be specified suggesting a simpler control of trailing limb trajectory by the CNS (one of stride length or landing stability objectives were not necessary). In contrast while the use of biarticular muscles can be sufficient to clear obstacles with the leading limb (obstacle encountered during mid to late swing), a stable landing and smooth toe and knee trajectories are compromised without suitable initial conditions at toe-off. The results suggest that the set of postulated objectives for the lead limb is adequate, although not complete
  • Keywords
    biocontrol; biomechanics; kinematics; muscle; neurophysiology; optimisation; physiological models; Lagrangian dynamics; biarticular muscle forces; biomechanical models; central nervous system objectives; input parameters set; kinematic characteristics; kinetic characteristics; knee; landing stability; leading limb; link segment simulation model; locomotion swing phase; movement efficiency; multiobjective optimization; muscle force inputs; obstacle clearance; smooth trajectories; stepping over obstacles; stride length; toe-off; trailing limb; Central nervous system; Kinematics; Kinetic theory; Lagrangian functions; Mechanical engineering; Muscles; Optimization methods; Recruitment; Stability; Strategic planning;
  • fLanguage
    English
  • Journal_Title
    Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1063-6528
  • Type

    jour

  • DOI
    10.1109/86.662619
  • Filename
    662619