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QuanEstimation.jl: An open-source Julia framework for quantum parameter estimation

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arxiv 2405.12066 v3 pith:SRZBLOA7 submitted 2024-05-20 quant-ph hep-thphysics.comp-ph

classification quant-phhep-thphysics.comp-ph
keywords quantumestimationparameterdesignframeworkquanestimationschemecore
verification ladder T0 review T1 audit T2 compute T3 formal
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As the main theoretical support of quantum metrology, quantum parameter estimation must follow the steps of quantum metrology towards the applied science and industry. Hence, optimal scheme design will soon be a crucial and core task for quantum parameter estimation. To efficiently accomplish this task, software packages aimed at computer-aided design are in high demand. In response to this need, we hereby introduce QuanEstimation.jl, an open-source Julia framework for scheme evaluation and design in quantum parameter estimation. It can be used either as an independent package or as the computational core of the recently developed hybrid-language (Python-Julia) package QuanEstimation [Phys. Rev. Res. 4 (4) (2022) 043057]. Utilizing this framework, the scheme evaluation and design in quantum parameter estimation can be readily performed, especially when quantum noises exist.

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  1. Achieving the Multi-parameter Quantum Cram\'er-Rao Bound with Antiunitary Symmetry

    quant-ph 2024-11 conditional novelty 5.0 of 10

    Two photonic models with antiunitary symmetry saturate the multi-parameter quantum Cramér-Rao bound; the mutually conjugate model halves the weighted mean squared error compared with the parallel-copy benchmark.

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