English

Beyond accuracy: generalization properties of bio-plausible temporal credit assignment rules

Neural and Evolutionary Computing 2023-01-18 v3 Artificial Intelligence Neurons and Cognition

Abstract

To unveil how the brain learns, ongoing work seeks biologically-plausible approximations of gradient descent algorithms for training recurrent neural networks (RNNs). Yet, beyond task accuracy, it is unclear if such learning rules converge to solutions that exhibit different levels of generalization than their nonbiologically-plausible counterparts. Leveraging results from deep learning theory based on loss landscape curvature, we ask: how do biologically-plausible gradient approximations affect generalization? We first demonstrate that state-of-the-art biologically-plausible learning rules for training RNNs exhibit worse and more variable generalization performance compared to their machine learning counterparts that follow the true gradient more closely. Next, we verify that such generalization performance is correlated significantly with loss landscape curvature, and we show that biologically-plausible learning rules tend to approach high-curvature regions in synaptic weight space. Using tools from dynamical systems, we derive theoretical arguments and present a theorem explaining this phenomenon. This predicts our numerical results, and explains why biologically-plausible rules lead to worse and more variable generalization properties. Finally, we suggest potential remedies that could be used by the brain to mitigate this effect. To our knowledge, our analysis is the first to identify the reason for this generalization gap between artificial and biologically-plausible learning rules, which can help guide future investigations into how the brain learns solutions that generalize.

Keywords

Cite

@article{arxiv.2206.00823,
  title  = {Beyond accuracy: generalization properties of bio-plausible temporal credit assignment rules},
  author = {Yuhan Helena Liu and Arna Ghosh and Blake A. Richards and Eric Shea-Brown and Guillaume Lajoie},
  journal= {arXiv preprint arXiv:2206.00823},
  year   = {2023}
}

Comments

NeurIPS 2022 Camera Ready Version

R2 v1 2026-06-24T11:36:41.333Z