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Potential and limitations of quantum extreme learning machines

Physics

Potential and limitations of quantum extreme learning machines

L. Innocenti, S. Lorenzo, et al.

Discover how Quantum Extreme Learning Machines (QELMs) can transform quantum state estimation by leveraging single effective measurements. This innovative framework, developed by L. Innocenti, S. Lorenzo, I. Palmisano, A. Ferraro, M. Paternostro, and G. M. Palma, paves the way for noise-resilient measurement paradigms.

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~3 min • Beginner • English
Abstract
Quantum extreme learning machines (QELMs) aim to efficiently post-process the outcome of fixed — generally uncalibrated — quantum devices to solve tasks such as the estimation of the properties of quantum states. The characterisation of their potential and limitations, which is currently lacking, will enable the full deployment of such approaches to problems of system identification, device performance optimization, and state or process reconstruction. We present a framework to model QELMs, showing that they can be concisely described via single effective measurements, and provide an explicit characterisation of the information exactly retrievable with such protocols. We furthermore find a close analogy between the training process of QELMs and that of reconstructing the effective measurement characterising the given device. Our analysis paves the way to a more thorough understanding of the capabilities and limitations of QELMs, and has the potential to become a powerful measurement paradigm for quantum state estimation that is more resilient to noise and imperfections.
Publisher
COMMUNICATIONS PHYSICS
Published On
May 25, 2023
Authors
L. Innocenti, S. Lorenzo, I. Palmisano, A. Ferraro, M. Paternostro, G. M. Palma
Tags
Quantum Extreme Learning Machines
quantum state estimation
effective measurements
data processing
noise resilience
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