In the context of quantum information, highly nonlinear regimes, such as those supporting solitons, are marginally investigated. We miss general methods for quantum solitons, although they can act as entanglement generators or as self-organized quantum processors. We develop a computational approach that uses a neural network as a variational ansatz for quantum solitons in an array of waveguides. By training the resulting phase space quantum machine-slearning model, we find different soliton solutions, varying the number of particles and interaction strength. We consider Gaussian states that enable measuring the degree of entanglement and sampling the probability distribution of many-particle events. We also determine the probability of generating particle pairs and unveil that soliton bound states emit correlated pairs. These results may have a role in boson sampling with nonlinear systems and in quantum processors for entangled nonlinear waves.

Variational quantum algorithm for Gaussian discrete solitons and their boson sampling / Conti, Claudio. - In: PHYSICAL REVIEW A. - ISSN 2469-9926. - 106:1(2022), pp. 1-18. [10.1103/physreva.106.013518]

Variational quantum algorithm for Gaussian discrete solitons and their boson sampling

Claudio Conti
Primo
Writing – Original Draft Preparation
2022

Abstract

In the context of quantum information, highly nonlinear regimes, such as those supporting solitons, are marginally investigated. We miss general methods for quantum solitons, although they can act as entanglement generators or as self-organized quantum processors. We develop a computational approach that uses a neural network as a variational ansatz for quantum solitons in an array of waveguides. By training the resulting phase space quantum machine-slearning model, we find different soliton solutions, varying the number of particles and interaction strength. We consider Gaussian states that enable measuring the degree of entanglement and sampling the probability distribution of many-particle events. We also determine the probability of generating particle pairs and unveil that soliton bound states emit correlated pairs. These results may have a role in boson sampling with nonlinear systems and in quantum processors for entangled nonlinear waves.
2022
quantum information; boson sampling; machine learning; quantum machine learning
01 Pubblicazione su rivista::01a Articolo in rivista
Variational quantum algorithm for Gaussian discrete solitons and their boson sampling / Conti, Claudio. - In: PHYSICAL REVIEW A. - ISSN 2469-9926. - 106:1(2022), pp. 1-18. [10.1103/physreva.106.013518]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1678967
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