Skip to main content

Individualized Learning-Based Ground Reaction Force Estimation in People Post-Stroke Using Pressure Insoles.

Publication ,  Conference
Bergamo, G; Swaminathan, K; Kim, D; Chin, A; Siviy, C; Novillo, I; Baker, TC; Wendel, N; Ellis, TD; Walsh, CJ
Published in: IEEE ... International Conference on Rehabilitation Robotics : [proceedings]
September 2023

Stroke is a leading cause of gait disability that leads to a loss of independence and overall quality of life. The field of clinical biomechanics aims to study how best to provide rehabilitation given an individual's impairments. However, there remains a disconnect between assessment tools used in biomechanical analysis and in clinics. In particular, 3-dimensional ground reaction forces (3D GRFs) are used to quantify key gait characteristics, but require lab-based equipment, such as force plates. Recent efforts have shown that wearable sensors, such as pressure insoles, can estimate GRFs in real-world environments. However, there is limited understanding of how these methods perform in people post-stroke, where gait is highly heterogeneous. Here, we evaluate three subject-specific machine learning approaches to estimate 3D GRFs with pressure insoles in people post-stroke across varying speeds. We find that a Convolutional Neural Network-based approach achieves the lowest estimation errors of 0.75 ± 0.24, 1.13 ± 0.54, and 4.79 ± 3.04 % bodyweight for the medio-lateral, antero-posterior, and vertical GRF components, respectively. Estimated force components were additionally strongly correlated with the ground truth measurements ( ). Finally, we show high estimation accuracy for three clinically relevant point metrics on the paretic limb. These results suggest the potential for an individualized machine learning approach to translate to real-world clinical applications.

Duke Scholars

Published In

IEEE ... International Conference on Rehabilitation Robotics : [proceedings]

DOI

EISSN

1945-7901

ISSN

1945-7898

Publication Date

September 2023

Volume

2023

Start / End Page

1 / 6

Related Subject Headings

  • Walking
  • Stroke
  • Quality of Life
  • Mechanical Phenomena
  • Humans
  • Gait
  • Foot
  • Biomechanical Phenomena
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Bergamo, G., Swaminathan, K., Kim, D., Chin, A., Siviy, C., Novillo, I., … Walsh, C. J. (2023). Individualized Learning-Based Ground Reaction Force Estimation in People Post-Stroke Using Pressure Insoles. In IEEE ... International Conference on Rehabilitation Robotics : [proceedings] (Vol. 2023, pp. 1–6). https://doi.org/10.1109/icorr58425.2023.10304695
Bergamo, Gregoire, Krithika Swaminathan, Daekyum Kim, Andrew Chin, Christopher Siviy, Ignacio Novillo, Teresa C. Baker, Nicholas Wendel, Terry D. Ellis, and Conor J. Walsh. “Individualized Learning-Based Ground Reaction Force Estimation in People Post-Stroke Using Pressure Insoles.” In IEEE ... International Conference on Rehabilitation Robotics : [Proceedings], 2023:1–6, 2023. https://doi.org/10.1109/icorr58425.2023.10304695.
Bergamo G, Swaminathan K, Kim D, Chin A, Siviy C, Novillo I, et al. Individualized Learning-Based Ground Reaction Force Estimation in People Post-Stroke Using Pressure Insoles. In: IEEE . International Conference on Rehabilitation Robotics : [proceedings]. 2023. p. 1–6.
Bergamo, Gregoire, et al. “Individualized Learning-Based Ground Reaction Force Estimation in People Post-Stroke Using Pressure Insoles.IEEE ... International Conference on Rehabilitation Robotics : [Proceedings], vol. 2023, 2023, pp. 1–6. Epmc, doi:10.1109/icorr58425.2023.10304695.
Bergamo G, Swaminathan K, Kim D, Chin A, Siviy C, Novillo I, Baker TC, Wendel N, Ellis TD, Walsh CJ. Individualized Learning-Based Ground Reaction Force Estimation in People Post-Stroke Using Pressure Insoles. IEEE . International Conference on Rehabilitation Robotics : [proceedings]. 2023. p. 1–6.

Published In

IEEE ... International Conference on Rehabilitation Robotics : [proceedings]

DOI

EISSN

1945-7901

ISSN

1945-7898

Publication Date

September 2023

Volume

2023

Start / End Page

1 / 6

Related Subject Headings

  • Walking
  • Stroke
  • Quality of Life
  • Mechanical Phenomena
  • Humans
  • Gait
  • Foot
  • Biomechanical Phenomena