Ultrahigh-Performance Radio Frequency System-on-Chip Implementation of a Kalman Filter-Based High-Precision Time and Frequency Synchronization for Networked Integrated Sensing and Communication Systems

Roghayeh Ghasemi;Patrick Fenske;Tobias Koegel;Markus Hehn;Ingrid Ullmann;Martin Vossiek
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Abstract

The integration of radar sensing and imaging capabilities into future integrated sensing and communication (ISAC) networks enables advanced use cases, including autonomous vehicle navigation, real-time health monitoring, and smart city management. However, ultraprecise time and frequency synchronization is crucial for unlocking the full potential of such networked ISAC systems. In this article, a novel real-time wireless time and frequency synchronization scheme is developed and fully implemented on a high-end radio frequency system-on-chip field-programmable gate array (FPGA) platform. The excellent performance and robustness of the proposed solution in practical applications are demonstrated. It is evidenced that the recursive nature of the Kalman filter is well suited to the dynamic capabilities of FPGA-based simultaneous synchronization. Observed values obtained through the precision time protocol (PTP) are iteratively refined, thus effectively compensating for uncertainties encountered during a synchronization packet exchange. Due to the deterministic processing time inherent in the FPGA, the proposed synchronization method achieves exceptional precision, with clock offset deviations in the nanosecond range and clock rate deviations limited to only a few parts per billion, even across considerable distances between the network nodes.
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基于卡尔曼滤波的网络化集成传感与通信系统高精度时频同步的超高性能射频片上系统实现
将雷达传感和成像功能集成到未来的集成传感和通信(ISAC)网络中,可以实现高级用例,包括自动驾驶车辆导航、实时健康监测和智慧城市管理。然而,超精确的时间和频率同步对于释放这种网络化ISAC系统的全部潜力至关重要。本文开发了一种新颖的实时无线时间和频率同步方案,并在高端射频片上系统现场可编程门阵列(FPGA)平台上完全实现。在实际应用中证明了该方法的优良性能和鲁棒性。结果表明,卡尔曼滤波器的递归特性非常适合fpga同步的动态特性。通过精确时间协议(PTP)获得的观测值进行迭代细化,从而有效地补偿同步数据包交换过程中遇到的不确定性。由于FPGA固有的确定性处理时间,所提出的同步方法实现了卓越的精度,时钟偏移偏差在纳秒范围内,时钟速率偏差限制在十亿分之几,即使在网络节点之间的相当距离上也是如此。
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