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Low-Brightness Quantum Radar

机译:低亮度量子雷达

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One of the major scientific thrusts from recent years has been to try to harness quantum phenomena to dramatically increase the performance of a wide variety of classical information processing devices. These advances in quantum information science have had a considerable impact on the development of standoff sensors such as quantum radar. In this paper we analyze the theoretical performance of low-brightness quantum radar that uses entangled photon states. We use the detection error probability as a measure of sensing performance and the interception error probability as a measure of stealthiness. We compare the performance of quantum radar against a coherent light sensor (such as lidar) and classical radar. In particular, we restrict our analysis to the performance of low-brightness standoff sensors operating in a noisy environment. We show that, compared to the two classical standoff sensing devices, quantum radar is stealthier, more resilient to jamming, and more accurate for the detection of low reflectivity targets.
机译:近年来,主要的科学重点之一是试图利用量子现象来显着提高各种经典信息处理设备的性能。量子信息科学的这些进步对诸如量子雷达之类的防区位传感器的发展产生了重大影响。在本文中,我们分析了使用纠缠光子态的低亮度量子雷达的理论性能。我们将检测错误概率用作感知性能的度量,将拦截错误概率用作隐身性的度量。我们将量子雷达与相干光传感器(如激光雷达)和经典雷达的性能进行比较。特别是,我们的分析仅限于在嘈杂环境中运行的低亮度对峙传感器的性能。我们表明,与两种经典的防区外传感装置相比,量子雷达更隐身,对干扰更有弹性,并且对于低反射率目标的检测更加准确。

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