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Journal Article
Sep, 2026

High-capacity associative memory in a quantum-optical spin glass

Brendan P. Marsh, David Atri Schuller, Yunpeng Ji, Henry S. Hunt, Surya Ganguli, Sarang Gopalakrishnan, Jonathan Keeling, Benjamin L. Lev

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DOI: 10.1126/science.aec3917
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Abstract

The Hopfield neural network stores memories using all-to-all-coupled spins and recalls those memories through equilibrium dynamics. Storing too many hampers recall because frustration causes an exponential number of spurious patterns to arise as the network becomes a spin glass. Despite this, memory recall can be restored, and even enhanced, under quantum-optical nonequilibrium dynamics because spurious patterns can now serve as reliable memories. We experimentally observe associative memory with high storage capacity in a driven-dissipative spin glass made of atoms and photons. The capacity surpasses that of the Hopfield model under Hebbian learning by up to seven-fold in a sixteen-spin network. Atomic motion boosts capacity by dynamically modifying connectivity akin to short-term synaptic plasticity in neural networks, realizing a precursor to learning in a quantum-optical system.

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    Date of publication: 3 Sep, 2026Number of views: 20
    Full text: www.science.org
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    Brendan P. Marsh et al. ,High-capacity associative memory in a quantum-optical spin glass.Science0,eaec3917DOI:10.1126/science.aec3917

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