论文标题
使用分布式传感器进行无接触式材料探测:关节传感和通信优化
Contact-less Material Probing with Distributed Sensors: Joint Sensing and Communication Optimization
论文作者
论文摘要
在学术界和行业中,使用RF信号来探测物体的材料特性都引起了人们的极大兴趣。为此,研究了一个设置,其中配备了二维多Antenna阵列的发射器调度一个信号,该信号击中了环境中的对象,并且来自对象的反射是由分布式传感器捕获的。然后将这些传感器处的接收信号放大并转发到多个天线融合中心,该中心执行时空后处理以优化信息提取。在此过程中,在传感器放大以及传感器放大以及至关重要的重要性。在此,鉴于在融合中心的最大比率组合(MRC),功率分配和传感器放大是共同优化的。我们将这一挑战提出为总和最小化,在每个对象SINR约束下,在传感器处的发射器和个体功率约束的总和约束。此外,讨论了在融合中心部署零强度(ZF)和最小于点误差(MMSE)的优势。还为大量传感器部署在传感环境中的情况下还提供了渐近分析。
The utilization of RF signals to probe material properties of objects is of huge interest both in academia as well as industry. To this end, a setup is investigated, in which a transmitter equipped with a two-dimensional multi-antenna array dispatches a signal, which hits objects in the environment and the reflections from the objects are captured by distributed sensors. The received signal at those sensors are then amplified and forwarded to a multiple antenna fusion center, which performs space-time post-processing in order to optimize the information extraction. In this process, optimal design of power allocation per object alongside sensors amplifications is of crucial importance. Here, the power allocation and sensors amplifications is jointly optimized, given maximum-ratio combining (MRC) at the fusion center. We formulate this challenge as a sum-power minimization under per-object SINR constraints, a sum-power constraint at the transmitter and individual power constraints at the sensors. Moreover, the advantage of deploying zero-forcing (ZF) and minimum mean-squared error (MMSE) at the fusion center is discussed. Asymptotic analysis is also provided for the case that large number of sensors are deployed in the sensing environment.