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A geometric perspective: experimental evaluation of the quantum Cramer-Rao bound

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arxiv 2204.13777 v2 pith:J33WFY3W submitted 2022-04-28 quant-ph physics.app-ph

classification quant-phphysics.app-ph
keywords quantumqcrbboundestimationcramer-raoexperimentallygeometricgeometry
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The power of quantum sensing rests on its ultimate precision limit, quantified by the quantum Cramer-Rao bound (QCRB), which can surpass classical bounds. In multi-parameter estimation, the QCRB is not always saturated as the quantum nature of associated observables may lead to their incompatibility. Here we explore the precision limits of multi-parameter estimation through the lens of quantum geometry, enabling us to experimentally evaluate the QCRB via quantum geometry measurements. Focusing on two- and three-parameter estimation, we elucidate how fundamental quantum uncertainty principles prevent the saturation of the bound. By linking a metric of "quantumness" to the system geometric properties, we investigate and experimentally extract the attainable QCRB for three-parameter estimations.

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  1. Control incompatibility in multiparameter quantum metrology

    quant-ph 2024-11 conditional novelty 6.0 of 10

    A control scheme is derived that minimizes the precision trade-off caused by incompatible optimal controls in two-parameter quantum estimation within SU(2) dynamics.

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