论文标题
在具有智能表面的车辆网络中传感辅助通信
Sensing-Assisted Communication in Vehicular Networks with Intelligent Surface
论文作者
论文摘要
综合传感和通信(ISAC)技术的最新发展为满足高通量和低延迟通信以及车辆网络中的高分辨率定位要求提供了新的机会。但是,考虑到具有随机反射系数的车辆的路现场单位(RSU)的发射功率有限,相对较小的雷达横截面(RC),回声信号的功率可能太弱,无法用于有效的目标检测和跟踪。此外,高频信号通常在穿透车辆时会造成巨大的褪色损失,这严重降低了车辆内部通信服务的质量。为了解决这个问题,我们通过在车辆表面上采用智能Omni-Surface(ios)来提高感应和通信(S&C)性能(S&C)性能,提出了一种新颖的感应辅助通信机制。为此,我们首先提出了一个两阶段的ISAC协议,包括S&C阶段和仅通信阶段,以实现从传感中受益的更有效的沟通性能改善。可实现的通信速率最大化问题是通过共同优化发射光束形成,iOS相移和关节S&C阶段持续时间来提出的。但是,解决此ISAC优化问题是高度不平凡的,因为不准确的估计和测量信息使可达到的速率缺乏封闭形式的表达。为了解决这个问题,我们首先在不确定的位置信息下得出了可实现率的封闭式表达,然后揭示了存在联合S&C阶段的足够和必要条件,以提供实用系统设计的有用见解。此外,分析了两种典型情况,包括干扰限制和噪声限制的情况。
The recent development of integrated sensing and communications (ISAC) technology offers new opportunities to meet high-throughput and low-latency communication as well as high-resolution localization requirements in vehicular networks. However, considering the limited transmit power of the road site units (RSUs) and the relatively small radar cross section (RCS) of vehicles with random reflection coefficients, the power of echo signals may be too weak to be utilized for effective target detection and tracking. Moreover, high-frequency signals usually suffer from large fading loss when penetrating vehicles, which seriously degrades the quality of communication services inside the vehicles. To handle this issue, we propose a novel sensing-assisted communication mechanism by employing an intelligent omni-surface (IOS) on the surface of vehicles to enhance both sensing and communication (S&C) performance. To this end, we first propose a two-stage ISAC protocol, including the joint S&C stage and the communication-only stage, to fulfill more efficient communication performance improvements benefited from sensing. The achievable communication rate maximization problem is formulated by jointly optimizing the transmit beamforming, the IOS phase shifts, and the duration of the joint S&C stage. However, solving this ISAC optimization problem is highly non-trivial since inaccurate estimation and measurement information renders the achievable rate lack of closed-form expression. To handle this issue, we first derive a closed-form expression of the achievable rate under uncertain location information, and then unveil a sufficient and necessary condition for the existence of the joint S&C stage to offer useful insights for practical system design. Moreover, two typical scenarios including interference-limited and noise-limited cases are analyzed.