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Título

Quantum Associative Memory with a Single Driven-Dissipative Nonlinear Oscillator

AutorLabay-Mora, Adrià; Zambrini, Roberta CSIC ORCID ; Giorgi, Gian Luca CSIC ORCID
Palabras clavePhysics - Disordered Systems and Neural Networks
Quantum Physics
Fecha de publicación31-may-2023
EditorAmerican Physical Society
CitaciónPhysical Review Letters 130(19): 190602 (2023)
ResumenAlgorithms for associative memory typically rely on a network of many connected units. The prototypical example is the Hopfield model, whose generalizations to the quantum realm are mainly based on open quantum Ising models. We propose a realization of associative memory with a single driven-dissipative quantum oscillator exploiting its infinite degrees of freedom in phase space. The model can improve the storage capacity of discrete neuron-based systems in a large regime and we prove successful state discrimination between n coherent states, which represent the stored patterns of the system. These can be tuned continuously by modifying the driving strength, constituting a modified learning rule. We show that the associative-memory capability is inherently related to the existence of a spectral separation in the Liouvillian superoperator, which results in a long timescale separation in the dynamics corresponding to a metastable phase.
Versión del editorhttps://doi.org/10.1103/PhysRevLett.130.190602
URIhttp://hdl.handle.net/10261/352161
DOI10.1103/PhysRevLett.130.190602
ISSN0031-9007
E-ISSN1079-7114
ReferenciasLabay-Mora, Adrià; Zambrini, Roberta CSIC ORCID ; Giorgi, Gian Luca; 2023; Quantum associative memory with a single driven-dissipative nonlinear oscillator [Preprint]; arXiv; Version 3; https://doi.org/10.48550/arXiv.2205.09491
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