English

Enhancing associative memory recall and storage capacity using confocal cavity QED

Quantum Physics 2021-06-16 v1 Disordered Systems and Neural Networks Quantum Gases Statistical Mechanics

Abstract

We introduce a near-term experimental platform for realizing an associative memory. It can simultaneously store many memories by using spinful bosons coupled to a degenerate multimode optical cavity. The associative memory is realized by a confocal cavity QED neural network, with the cavity modes serving as the synapses, connecting a network of superradiant atomic spin ensembles, which serve as the neurons. Memories are encoded in the connectivity matrix between the spins, and can be accessed through the input and output of patterns of light. Each aspect of the scheme is based on recently demonstrated technology using a confocal cavity and Bose-condensed atoms. Our scheme has two conceptually novel elements. First, it introduces a new form of random spin system that interpolates between a ferromagnetic and a spin-glass regime as a physical parameter is tuned---the positions of ensembles within the cavity. Second, and more importantly, the spins relax via deterministic steepest-descent dynamics, rather than Glauber dynamics. We show that this nonequilibrium quantum-optical scheme has significant advantages for associative memory over Glauber dynamics: These dynamics can enhance the network's ability to store and recall memories beyond that of the standard Hopfield model. Surprisingly, the cavity QED dynamics can retrieve memories even when the system is in the spin glass phase. Thus, the experimental platform provides a novel physical instantiation of associative memories and spin glasses as well as provides an unusual form of relaxational dynamics that is conducive to memory recall even in regimes where it was thought to be impossible.

Keywords

Cite

@article{arxiv.2009.01227,
  title  = {Enhancing associative memory recall and storage capacity using confocal cavity QED},
  author = {Brendan P. Marsh and Yudan Guo and Ronen M. Kroeze and Sarang Gopalakrishnan and Surya Ganguli and Jonathan Keeling and Benjamin L. Lev},
  journal= {arXiv preprint arXiv:2009.01227},
  year   = {2021}
}

Comments

35 pages, 16 figures, 6 appendices

R2 v1 2026-06-23T18:16:30.469Z