Intelligent Reflecting Surface-Aided Maneuvering Target Sensing: True Velocity Estimation

Lei Xie, Xianghao Yu, Shenghui Song
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引用次数: 2

Abstract

Maneuvering target sensing will be an important service of future vehicular networks, where precise velocity estimation is one of the core tasks. To this end, the recently proposed integrated sensing and communications (ISAC) provides a promising platform for achieving accurate velocity estimation. However, with one mono-static ISAC base station (BS), only the radial projection of the true velocity can be estimated, which causes serious estimation error. In this paper, we investigate the estimation of the true velocity of a maneuvering target with the assistance of an intelligent reflecting surface (IRS). We propose an efficient velocity estimation algorithm by exploiting the two perspectives from the BS and IRS to the target. We propose a two-stage scheme where the true velocity can be recovered based on the Doppler frequency of the BS-target link and BS-IRS-target link. Experimental results validate that the true velocity can be precisely recovered and demonstrate the advantage of adding the IRS.
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智能反射表面辅助机动目标传感:真速度估计
机动目标传感将是未来车载网络的一项重要服务,其中精确速度估计是核心任务之一。为此,最近提出的集成传感和通信(ISAC)为实现精确的速度估计提供了一个有前途的平台。然而,对于单静态ISAC基站,只能估计真实速度的径向投影,这导致了严重的估计误差。本文研究了基于智能反射面的机动目标真实速度估计问题。我们提出了一种有效的速度估计算法,利用了从BS和IRS到目标的两个角度。我们提出了一种基于bs -目标链路和bs - irs -目标链路的多普勒频率恢复真实速度的两阶段方案。实验结果表明,该方法可以精确地恢复真实速度,并证明了增加IRS的优越性。
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