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Inverse dynamics of mechanical multibody systems: An improved algorithm that ensures consistency between kinematics and external forces

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  • Herre Faber
  • Arthur J van Soest
  • Dinant A Kistemaker

Abstract

Inverse dynamics is a technique in which measured kinematics and, possibly, external forces are used to calculate net joint torques in a rigid body linked segment model. However, kinematics and forces are usually not consistent due to incorrect modelling assumptions and measurement errors. This is commonly resolved by introducing ‘residual forces and torques’ which compensate for this problem, but do not exist in reality. In this study a constrained optimization algorithm is proposed that finds the kinematics that are mechanically consistent with measured external forces and mimic the measured kinematics as closely as possible. The algorithm was tested on datasets containing planar kinematics and ground reaction forces obtained during human walking at three velocities (0.8 m/s, 1.25 and 1.8 m/s). Before optimization, the residual force and torque were calculated for a typical example. Both showed substantial values, indicating the necessity of developing a mechanically consistent algorithm. The proposed optimization algorithm converged to a solution in which the residual forces and torques were zero, without changing the ground reaction forces and with only minor changes to the measured kinematics. When using a rigid body approach, our algorithm ensures a consistent description of forces and kinematics, thereby improving the validity of calculated net joint torque and power values.

Suggested Citation

  • Herre Faber & Arthur J van Soest & Dinant A Kistemaker, 2018. "Inverse dynamics of mechanical multibody systems: An improved algorithm that ensures consistency between kinematics and external forces," PLOS ONE, Public Library of Science, vol. 13(9), pages 1-16, September.
  • Handle: RePEc:plo:pone00:0204575
    DOI: 10.1371/journal.pone.0204575
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    Cited by:

    1. Marit P van Dijk & Peter J Beek & A J Knoek van Soest, 2020. "Predicting dive start performance from kinematic variables at water entry in (sub-)elite swimmers," PLOS ONE, Public Library of Science, vol. 15(10), pages 1-19, October.

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