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A machine learning based approach to the identification of spectral densities in quantum open systems

Articolo
Data di Pubblicazione:
2025
Citazione:
A machine learning based approach to the identification of spectral densities in quantum open systems / J. Barr, S. Mukherjee, A. Ferraro, M. Paternostro, G. Zicari. - In: THE EUROPEAN PHYSICAL JOURNAL. SPECIAL TOPICS. - ISSN 1951-6355. - (2025 Sep 21), pp. 1-13. [Epub ahead of print] [10.1140/epjs/s11734-025-01954-9]
Abstract:
We present a machine learning-based approach for characterising the environment that affects the dynamics of an open quantum system. We focus on the case of an exactly solvable spin-boson model, where the system-environment interaction, whose strength is encoded in the spectral density, induces pure dephasing. By using artificial neural networks trained on the Fourier-transformed time evolution of some observables of the system, we perform both classification—distinguishing sub-Ohmic, Ohmic, and super-Ohmic spectral densities—and regression—thus estimating key parameters of the spectral density function, when the latter is expressed through a power law. Our results demonstrate high classification accuracy and robust parameter estimation, highlighting the potential of machine learning as a powerful tool for probing environmental features in quantum systems and advancing quantum noise spectroscopy.
Tipologia IRIS:
01 - Articolo su periodico
Elenco autori:
J. Barr, S. Mukherjee, A. Ferraro, M. Paternostro, G. Zicari
Autori di Ateneo:
FERRARO ALESSANDRO ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/1194519
Progetto:
Efficient Verification of Quantum computing architectures with Bosons (VeriQuB)
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Settore PHYS-04/A - Fisica teorica della materia, modelli, metodi matematici e applicazioni
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Realizzato con VIVO | Progettato da Cineca | 25.11.5.0