论文标题
在混乱环境中共存多载波雷达和通信系统的电源分配
Power Allocation for Coexisting Multicarrier Radar and Communication Systems in Cluttered Environments
论文作者
论文摘要
在本文中,检查了功率分配,以了解采用多载波波形的雷达和通信系统的共存。我们通过在雷达接收器处最大化输出信噪比(SINR),同时保持某些通信吞吐量和功率约束,从而为所考虑的频谱共享问题提出了两种设计。第一个是联合设计,在该设计中,雷达和通信系统的亚通道功率均已共同优化。由于最终的问题是高度非凸,因此我们通过将两个系统的功率变量组合到一个堆叠变量中来引入重新制定,这使我们能够绕过常规的计算密集型交替优化过程。然后,通过二次变换方法以及顺序凸编程(SCP)技术解决所得问题。第二个是单方面设计,可优化固定通信功率的雷达传输功率。单方面设计适用于通信系统预先存在的情况,而雷达偶尔以二级用户的身份加入频道。通过基于泰勒扩展的迭代SCP程序来解决该问题。给出了数值结果,以证明与基于子载波分配的方法相比,提出的关节和单方面设计的有效性。
In this paper, power allocation is examined for the coexistence of a radar and a communication system that employ multicarrier waveforms. We propose two designs for the considered spectrum sharing problem by maximizing the output signal-to-interference-plus-noise ratio (SINR) at the radar receiver while maintaining certain communication throughput and power constraints. The first is a joint design where the subchannel powers of both the radar and communication systems are jointly optimized. Since the resulting problem is highly nonconvex, we introduce a reformulation by combining the power variables of both systems into a single stacked variable, which allows us to bypass a conventional computationally intensive alternating optimization procedure. The resulting problem is then solved via a quadratic transform method along with a sequential convex programming (SCP) technique. The second is a unilateral design which optimizes the radar transmission power with fixed communication power. The unilateral design is suitable for cases where the communication system pre-exists while the radar occasionally joins the channel as a secondary user. The problem is solved by a Taylor expansion based iterative SCP procedure. Numerical results are presented to demonstrate the effectiveness of the proposed joint and unilateral designs in comparison with a subcarrier allocation based method.