Varshney Neeraj, Berweger Samuel, Chuang Jack, Blandino Steve, Wang Jian, Pazare Neha, Gentile Camillo, Golmie Nada
Radio Access and Propagation Metrology Group, National Institute of Standards and Technology (NIST), Gaithersburg, MD 20899-6730 USA and contractor with Prometheus Computing LLC, Cullowhee, NC USA.
Communications Technology Laboratory, National Institute of Standards and Technology, Gaithersburg, MD 20899-6730 USA.
IEEE Internet Things J. 2023 Dec;10(24). doi: 10.1109/jiot.2023.3304545.
Efficient design of integrated sensing and communication systems can minimize signaling overhead by reducing the size and/or rate of feedback in reporting channel state information (CSI). To minimize the signaling overhead when performing sensing operations at the transmitter, this paper proposes a procedure to reduce the feedback rate. We consider a threshold-based sensing measurement and reporting procedure, such that the CSI is transmitted only if the channel variation exceeds a threshold. However, quantifying the channel variation, determining the threshold, and recovering sensing information with a lower feedback rate are still open problems. In this paper, we first quantify the channel variation by considering several metrics including the Euclidean distance, time-reversal resonating strength, and frequency-reversal resonating strength. We then design an algorithm to adaptively select a threshold, minimizing the feedback rate, while guaranteeing sufficient sensing accuracy by reconstructing high-quality signatures of human movement. To improve sensing accuracy with irregular channel measurements, we further propose two reconstruction schemes, which can be easily employed at the transmitter in case there is no feedback available from the receiver. Finally, the sensing performance of our scheme is extensively evaluated through real and synthetic channel measurements, considering channel estimation and synchronization errors. Our results show that the amount of feedback can be reduced by 50% while maintaining good sensing performance in terms of range and velocity estimations. Moreover, in contrast to other schemes, we show that the Euclidean distance metric is better able to capture various human movements with high channel variation values.
集成传感与通信系统的高效设计可通过减小报告信道状态信息(CSI)时反馈的大小和/或速率来最小化信令开销。为了在发射机处执行传感操作时最小化信令开销,本文提出了一种降低反馈速率的方法。我们考虑一种基于阈值的传感测量和报告方法,使得仅当信道变化超过阈值时才传输CSI。然而,量化信道变化、确定阈值以及以较低反馈速率恢复传感信息仍然是未解决的问题。在本文中,我们首先通过考虑包括欧几里得距离、时间反转谐振强度和频率反转谐振强度在内的几个指标来量化信道变化。然后,我们设计一种算法来自适应地选择阈值,在最小化反馈速率的同时,通过重建高质量的人体运动特征来保证足够的传感精度。为了利用不规则信道测量提高传感精度,我们进一步提出了两种重建方案,在没有来自接收机的反馈时,发射机可以很容易地采用这两种方案。最后,通过实际和合成信道测量,考虑信道估计和同步误差,对我们方案的传感性能进行了广泛评估。我们的结果表明,在保持距离和速度估计方面良好传感性能的同时,反馈量可减少50%。此外,与其他方案相比,我们表明欧几里得距离度量能够更好地捕捉具有高信道变化值的各种人体运动。