论文标题
星星启用了集成感应和通信
STARS Enabled Integrated Sensing and Communications
论文作者
论文摘要
提出了同时传输和反射智能表面(星星)启用集成的感应和通信(ISAC)框架,其中整个空间都被恒星划分为传感空间和通信空间。提出了一种新颖的传感标准结构,其中安装了专用传感器,该结构被提议用于解决显着的路径损失和杂乱的传感干扰。得出了传感目标的2维(2D)二维(2D)的CRAMER-RAO结合(CRB),然后将其最小化,但要根据最小通信要求。提出了一种新的方法,以将复杂的CRB最小化问题转变为可追踪的修改的Fisher信息矩阵(FIM)优化问题。研究了恒星的独立和耦合相移模型:1)对于独立的相移模型,以解决修饰FIM中ISAC波形和恒星系数的耦合,这是一种有效的双环迭代算法,基于惩罚双重分解(PDD)框架的有效的双环迭代算法是构想的; 2)对于基于PDD框架的耦合相移模型,提出了低复杂性交替优化算法,以通过在封闭形式中优化振幅和相移系数来解决耦合的相移常数。最后,数值结果表明:1)恒星在通信约束下明显优于CRB中的常规RI; 2)耦合的相移模型可在低通信要求或足够的星星元素方面达到可比的性能; 3)增加恒星的被动元件的数量而不是传感器的活性元素更有效; 4)与常规RI相比,使用实用2D最大似然估计器可以通过恒星来实现高传感精度。
A simultaneously transmitting and reflecting intelligent surface (STARS) enabled integrated sensing and communications (ISAC) framework is proposed, where the whole space is divided by STARS into a sensing space and a communication space. A novel sensing-at-STARS structure, where dedicated sensors are installed at the STARS, is proposed to address the significant path loss and clutter interference for sensing. The Cramer-Rao bound (CRB) of the 2-dimension (2D) direction-of-arrivals (DOAs) estimation of the sensing target is derived, which is then minimized subject to the minimum communication requirement. A novel approach is proposed to transform the complicated CRB minimization problem into a trackable modified Fisher information matrix (FIM) optimization problem. Both independent and coupled phase-shift models of STARS are investigated: 1) For the independent phase-shift model, to address the coupling of ISAC waveform and STARS coefficient in the modified FIM, an efficient double-loop iterative algorithm based on the penalty dual decomposition (PDD) framework is conceived; 2) For the coupled phase-shift model, based on the PDD framework, a low complexity alternating optimization algorithm is proposed to tackle coupled phase-shift constants by alternatively optimizing amplitude and phase-shift coefficients in closed-form. Finally, the numerical results demonstrate that: 1) STARS significantly outperforms the conventional RIS in CRB under the communication constraints; 2) The coupled phase-shift model achieves comparable performance to the independent one for low communication requirements or sufficient STARS elements; 3) It is more efficient to increase the number of passive elements of STARS rather than the active elements of the sensor; 4) High sensing accuracy can be achieved by STARS using the practical 2D maximum likelihood estimator compared with the conventional RIS.