English

Internal Feedback in Biological Control: Locality and System Level Synthesis

Systems and Control 2022-04-07 v3 Systems and Control Neurons and Cognition

Abstract

The presence of internal feedback pathways (IFPs) is a prevalent yet unexplained phenomenon in the brain. Motivated by experimental observations on 1) motor-related signals in visual areas, and 2) massively distributed processing in the brain, we approach this problem from a sensorimotor standpoint and make use of distributed optimal controllers to explain IFPs. We use the System Level Synthesis (SLS) controller to model neural phenomena such as signaling delay, local processing, and local reaction. Based on the SLS controller, we make qualitative predictions about IFPs that strongly align with existing experimental observations. We introduce a `mesocircuit' for optimal performance with distributed and local processing, and local disturbance rejection; this mesocircuit requires extreme amounts of IFPs and memory for proper function. This is the first theory that replicates the massive amounts of IFPs in the brain purely from a priori principles, providing a new theoretical basis upon which we can build to better understand the inner workings of the brain.

Keywords

Cite

@article{arxiv.2109.11757,
  title  = {Internal Feedback in Biological Control: Locality and System Level Synthesis},
  author = {Jing Shuang Li},
  journal= {arXiv preprint arXiv:2109.11757},
  year   = {2022}
}

Comments

To appear in 2022 ACC; Companion paper to arXiv:2110.05029, arXiv:2109.11752; Version updates: author change (J. C. D. has been consulted), additional material + figures

R2 v1 2026-06-24T06:17:04.496Z