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Improved maximum-likelihood quantum amplitude estimation

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arxiv 2209.03321 v3 pith:HR5WDGNC submitted 2022-09-07 quant-ph

classification quant-ph
keywords quantumalgorithmamplitudeestimationincludingmaximum-likelihoodmlqaenumber
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Quantum amplitude estimation is a key subroutine in a number of powerful quantum algorithms, including quantum-enhanced Monte Carlo simulation and quantum machine learning. Maximum-likelihood quantum amplitude estimation (MLQAE) is one of a number of recent approaches that employ much simpler quantum circuits than the original algorithm based on quantum phase estimation. In this article, we deepen the analysis of MLQAE to put the algorithm in a more prescriptive form, including scenarios where quantum circuit depth is limited. In the process, we observe and explain particular ranges of `exceptional' values of the target amplitude for which the algorithm fails to achieve the desired precision. We then propose and numerically validate a heuristic modification to the algorithm to overcome this problem, bringing the algorithm even closer to being useful as a practical subroutine on near- and mid-term quantum hardware.

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  1. Classical post-processing approach for quantum amplitude estimation

    quant-ph 2025-02 conditional novelty 4.0 of 10

    A hybrid quantum-classical algorithm estimates quantum amplitudes from the Fourier peaks of Gaussian-filtered overlap measurements, without the quantum Fourier transform.

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