English

Physical learning beyond the quasistatic limit

Disordered Systems and Neural Networks 2022-05-17 v1 Soft Condensed Matter Computational Physics

Abstract

Physical networks, such as biological neural networks, can learn desired functions without a central processor, using local learning rules in space and time to learn in a fully distributed manner. Learning approaches such as equilibrium propagation, directed aging, and coupled learning similarly exploit local rules to accomplish learning in physical networks such as mechanical, flow, or electrical networks. In contrast to certain natural neural networks, however, such approaches have so far been restricted to the quasistatic limit, where they learn on time scales slow compared to their physical relaxation. This quasistatic constraint slows down learning, limiting the use of these methods as machine learning algorithms, and potentially restricting physical networks that could be used as learning platforms. Here we explore learning in an electrical resistor network that implements coupled learning, both in the lab and on the computer, at rates that range from slow to far above the quasistatic limit. We find that up to a critical threshold in the ratio of the learning rate to the physical rate of relaxation, learning speeds up without much change of behavior or error. Beyond the critical threshold, the error exhibits oscillatory dynamics but the networks still learn successfully.

Keywords

Cite

@article{arxiv.2112.11399,
  title  = {Physical learning beyond the quasistatic limit},
  author = {Menachem Stern and Sam Dillavou and Marc Z. Miskin and Douglas J. Durian and Andrea J. Liu},
  journal= {arXiv preprint arXiv:2112.11399},
  year   = {2022}
}

Comments

26 pages, 5 figures

R2 v1 2026-06-24T08:26:40.595Z