Papers › Flexible Phase Dynamics for Bio-Plausible Contrastive Learning

Flexible Phase Dynamics for Bio-Plausible Contrastive Learning

24 Feb 2023arXiv:2302.12431archive 2025-07-28

Ezekiel Williams, Colin Bredenberg, Guillaume Lajoie

Many learning algorithms used as normative models in neuroscience or as candidate approaches for learning on neuromorphic chips learn by contrasting one set of network states with another. These Contrastive Learning (CL) algorithms are traditionally implemented with rigid, temporally non-local, and periodic learning dynamics that could limit the range of physical systems capable of harnessing CL. In this study, we build on recent work exploring how CL might be implemented by biological or neurmorphic systems and show that this form of learning can be made temporally local, and can still function even if many of the dynamical requirements of standard training procedures are relaxed. Thanks to a set of general theorems corroborated by numerical experiments across several CL models, our results provide theoretical foundations for the study and development of CL methods for biological and neuromorphic neural networks.

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Syntology Ran 8 of 8 code samples harvested from 1 repository linked to this paper; 0 have no recorded run. Of those that ran: 3 ran · honoured contract; 1 ran · violated contract; 3 ran · our draft was wrong; 1 ran · fixture could not drive it.

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8 samples harvested; 8 ran; 3 honoured the contract we drafted; 0 have no recorded run. Read from Syntology's graph 2026-09-24; that is when this build read the record, not when the samples ran.

3ran · honoured contract
1ran · violated contract
3ran · our draft was wrong
1ran · fixture could not drive it

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bin_array zek3r/icml2023/RBM_ICML.py official repository ran · honoured contract no licence file found · pointer only · 2056b4474e96758b · report
exp_smoothing zek3r/icml2023/RBM_ICML.py official repository ran · honoured contract fingerprinted no licence file found · pointer only · f18dadc85e4929f8 · report
get_batches zek3r/icml2023/FF_EXP_ICML.py official repository ran · our draft was wrong fingerprinted no licence file found · pointer only · 0f16a3948f4388d1 · report
int_to_one_hot zek3r/icml2023/MNIST_TOOLS_ICML.py official repository ran · our draft was wrong fingerprinted no licence file found · pointer only · 0def94fc051e650f · report
load_mnist zek3r/icml2023/MNIST_TOOLS_ICML.py official repository ran · our draft was wrong no licence file found · pointer only · 6c9d971c4cd0e840 · report
overlay_y_on_x zek3r/icml2023/FF_EXP_ICML.py official repository ran · fixture could not drive it no licence file found · pointer only · 64134ff0cd7a257a · report
remove_unused_one_hots zek3r/icml2023/MNIST_TOOLS_ICML.py official repository ran · violated contract fingerprinted no licence file found · pointer only · 52fef4694e3093d9 · report
sigmoid zek3r/icml2023/RBM_ICML.py official repository ran · honoured contract fingerprinted no licence file found · pointer only · e21f85087b040589 · report

Tasks

Contrastive Learning

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Methods

Contrastive Learning

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