Co-contraction embodies uncertainty: an optimal feedforward strategy for robust motor control
File(s)journal.pcbi.1012598.pdf (2 MB)
Published version
Author(s)
Berret, Bastien
Verdel, Dorian
Burdet, Etienne
Jean, Frederic
Type
Journal Article
Abstract
Despite our environment often being uncertain, we generally manage to generate stable motor behaviors. While reactive control plays a major role in this achievement, proactive control is critical to cope with the substantial noise and delays that affect neuromusculoskeletal systems. In particular, muscle co-contraction is exploited to robustify feedforward motor commands against internal sensorimotor noise as was revealed by stochastic optimal open-loop control modeling. Here, we extend this framework to neuromusculoskeletal systems subjected to random disturbances originating from the environment. The analytical derivation and numerical simulations predict a characteristic relationship between the degree of uncertainty in the task at hand and the optimal level of anticipatory co-contraction. This prediction is confirmed through a single-joint pointing task experiment where an external torque is applied to the wrist near the end of the reaching movement with varying probabilities across blocks of trials. We conclude that uncertainty calls for impedance control via proactive muscle co-contraction to stabilize behaviors when reactive control is insufficient for task success.
Editor(s)
Haith, Adrian M
Date Issued
2024-11-20
Date Acceptance
2024-10-29
Citation
PLoS Computational Biology, 2024, 20 (11)
ISSN
1553-734X
Publisher
Public Library of Science (PLoS)
Journal / Book Title
PLoS Computational Biology
Volume
20
Issue
11
Copyright Statement
© 2024 Berret et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
License URL
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/39565821
PII: PCOMPBIOL-D-24-01022
Subjects
ADAPTATION
ARM
Biochemical Research Methods
Biochemistry & Molecular Biology
COACTIVATION
IMPEDANCE CONTROL
INTERNAL-MODEL
JOINT
Life Sciences & Biomedicine
LINEARIZATION
Mathematical & Computational Biology
NOISE
Science & Technology
STIFFNESS
UNSTABLE DYNAMICS
Publication Status
Published
Coverage Spatial
United States
Article Number
e1012598
Date Publish Online
2024-11-20