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Estimating joint kinematics from skin motion observation: modelling and validation

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  • Alon Wolf
  • Merav Senesh

Abstract

Modelling of soft tissue motion is required in many areas, such as computer animation, surgical simulation, 3D motion analysis and gait analysis. In this paper, we will focus on the use of modelling of skin deformation during 3D motion analysis. The most frequently used method in 3D human motion analysis involves placing markers on the skin of the analysed segment which is composed of the rigid bone and the surrounding soft tissues. Skin and soft tissue deformations introduce a significant artefact which strongly influences the resulting bone position, orientation and joint kinematics. For this study, we used a statistical solid dynamics approach which is a combination of several previously reported tools: the point cluster technique (PCT) and a Kalman filter which was added to the PCT. The methods were tested and evaluated on controlled human-arm motions, using an optical motion capture system (ViconTM).The addition of a Kalman filter to the PCT for rigid body motion estimation results in a smoother signal that better represents the joint motion. Calculations indicate less signal distortion than when using a digital low-pass filter. Furthermore, adding a Kalman filter to the PCT substantially reduces the dispersion of the maximal and minimal instantaneous frequencies. For controlled human movements, the result indicated that adding a Kalman filter to the PCT produced a more accurate signal. However, it could not be concluded that the proposed Kalman filter is better than a low-pass filter for estimation of the motion. We suggest that implementation of a Kalman filter with a better biomechanical motion model will be more likely to improve the results.

Suggested Citation

  • Alon Wolf & Merav Senesh, 2011. "Estimating joint kinematics from skin motion observation: modelling and validation," Computer Methods in Biomechanics and Biomedical Engineering, Taylor & Francis Journals, vol. 14(11), pages 939-946.
  • Handle: RePEc:taf:gcmbxx:v:14:y:2011:i:11:p:939-946
    DOI: 10.1080/10255842.2010.499872
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    Cited by:

    1. Andrea Ancillao & Arno Verduyn & Maxim Vochten & Erwin Aertbeliën & Joris De Schutter, 2022. "A Novel Procedure for Knee Flexion Angle Estimation Based on Functionally Defined Coordinate Systems and Independent of the Marker Landmarks," IJERPH, MDPI, vol. 20(1), pages 1-9, December.
    2. Francisco Molina-Rueda & Pilar Fernández-González & Alicia Cuesta-Gómez & Aikaterini Koutsou & María Carratalá-Tejada & Juan Carlos Miangolarra-Page, 2021. "Test–Retest Reliability of a Conventional Gait Model for Registering Joint Angles during Initial Contact and Toe-Off in Healthy Subjects," IJERPH, MDPI, vol. 18(3), pages 1-8, February.

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