Neural-Network Heuristics for Adaptive Bayesian Quantum Estimation

Quantum metrology promises unprecedented measurement precision but suffers in practice from the limited availability of resources such as the number of probes, their coherence time, or nonclassical quantum states. The adaptive Bayesian approach to parameter estimation allows an efficient use of reso...

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Bibliographic Details
Published inPRX quantum Vol. 2; no. 2; p. 020303
Main Authors Fiderer, Lukas J., Schuff, Jonas, Braun, Daniel
Format Journal Article
LanguageEnglish
Published American Physical Society 01.04.2021
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Summary:Quantum metrology promises unprecedented measurement precision but suffers in practice from the limited availability of resources such as the number of probes, their coherence time, or nonclassical quantum states. The adaptive Bayesian approach to parameter estimation allows an efficient use of resources because of adaptive experiment design. For its practical success, fast numerical solutions for the Bayesian update and the adaptive experiment design are crucial. Here we show that neural networks can be trained to become fast and strong experiment-design heuristics using a combination of an evolutionary strategy and reinforcement learning. Neural-network heuristics are shown to outperform established heuristics for the technologically important example of frequency estimation of a qubit that suffers from dephasing. Our method of creating neural-network heuristics is very general and complements the well-studied sequential Monte Carlo method for Bayesian updates to form a complete framework for adaptive Bayesian quantum estimation.
ISSN:2691-3399
2691-3399
DOI:10.1103/PRXQuantum.2.020303