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首页> 外文期刊>Annals of telecommunications >Quantum signal processing for quantum phase estimation: Fourier transform versus maximum likelihood approaches
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Quantum signal processing for quantum phase estimation: Fourier transform versus maximum likelihood approaches

机译:量子相位估计量子信号处理:傅里叶变换与最大似然方法

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摘要

The phase in quantum states is an essential information carrier for quantum telecommunications, signal processing, and computation. Quantum phase estimation is therefore a fundamental operation to extract and control useful information at the quantum level. Here, we analyze various approaches to quantum phase estimation, when a phase parameter characterizing a quantum process gets imprinted in a relative phase attached to a quantum state serving as a probe signal. The estimation approaches are based on standard concepts of signal processing (Fourier transform, maximum likelihood), yet operated in the quantum realm. We also exploit the Fisher information, both in its classical and its quantum forms, in order to assess the performance of each approach to quantum phase estimation. We demonstrate a possibility of enhanced estimation performance, inaccessible classically, which is obtained via optimized quantum entanglement. Beyond their significance to quantum phase estimation, the results illustrate how standard concepts of signal processing can contribute to the ongoing developments in quantum information and quantum technologies.
机译:量子状态中的阶段是用于量子电信,信号处理和计算的基本信息载体。因此,量子相位估计是在量子级提取和控制有用信息的基本操作。这里,当表征量子过程的相位参数在连接到用作探针信号的量子状态的相对相位中被印在时,我们分析了量子相位估计的各种方法。估计方法基于信号处理的标准概念(傅里叶变换,最大可能性),但在量子域中操作。我们还利用其古典及其量子形式的Fisher信息,以评估每种方法对量子相位估计的性能。我们展示了通过优化量子纠缠获得的经典上获得估计性能,无法进入的可能性。除了对量子相位估计的重要性之外,结果说明了信号处理的标准概念如何有助于量子信息和量子技术的持续发展。

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