Optimal Quantum Ranging — Hypothesis Testing for an Unknown Return Signal

L. Cohen, M. Wilde
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引用次数: 1

Abstract

Quantum information theory sets the ultimate limits for any information-processing task. In rangefinding and LIDAR, the presence or absence of a target can be tested by detecting different states at the receiver. In this paper, we use quantum hypothesis testing for an unknown coherent-state return signal in order to derive the limits of symmetric and asymmetric error probabilities of single-shot ranging experiments. We engineer a single measurement independent of the range, which in some cases saturates the quantum bound and for others is presumably the best measurement to approach it. This work bridges the gap between quantum information and quantum sensing and engineering and will contribute to devising better ranging sensors, as well as setting the path for finding practical limits for other quantum tasks.
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最优量子测距——未知返回信号的假设检验
量子信息理论为任何信息处理任务设定了终极限制。在测距和激光雷达中,可以通过检测接收器的不同状态来测试目标的存在或不存在。本文对未知的相干态返回信号进行量子假设检验,推导出单次测距实验的对称和非对称误差概率的极限。我们设计了一个独立于范围的单一测量,在某些情况下,它饱和了量子边界,而对于其他情况,它可能是接近它的最佳测量。这项工作弥合了量子信息与量子传感和工程之间的差距,将有助于设计更好的测距传感器,并为寻找其他量子任务的实际限制铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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