Real-Time Balancing of Stability and Plasticity in Continual Learning Enables Adaptive Speed Estimation for Lower-Limb Prostheses.

Johnson CB, Maldonado-Contreras J, Herrin KR, Young AJ

Open source

DOI
10.1109/tmrb.2025.3597014
Published
2025 Nov
Container
IEEE transactions on medical robotics and bionics
Publisher
Not recorded
Open access
yes

Credibility signals

limited evidence Score 45/100 under policy 1.0.0. This is a metadata assessment, not a judgment of the paper's conclusions.

Show all credibility signals

Cite this work

BibTeX

@article{allodium:10.1109/tmrb.2025.3597014,
  title = {Real-Time Balancing of Stability and Plasticity in Continual Learning Enables Adaptive Speed Estimation for Lower-Limb Prostheses.},
  author = {Johnson CB and Maldonado-Contreras J and Herrin KR and Young AJ},
  year = {2025},
  journal = {IEEE transactions on medical robotics and bionics},
  doi = {10.1109/tmrb.2025.3597014},
  url = {https://doi.org/10.1109/tmrb.2025.3597014}
}

RIS

TY  - JOUR
TI  - Real-Time Balancing of Stability and Plasticity in Continual Learning Enables Adaptive Speed Estimation for Lower-Limb Prostheses.
AU  - Johnson CB
AU  - Maldonado-Contreras J
AU  - Herrin KR
AU  - Young AJ
PY  - 2025
JO  - IEEE transactions on medical robotics and bionics
DO  - 10.1109/tmrb.2025.3597014
UR  - https://doi.org/10.1109/tmrb.2025.3597014
ER  - 

APA

CB, J., J, M., KR, H., & AJ, Y. (2025). Real-Time Balancing of Stability and Plasticity in Continual Learning Enables Adaptive Speed Estimation for Lower-Limb Prostheses.. IEEE transactions on medical robotics and bionics. https://doi.org/10.1109/tmrb.2025.3597014

Source records