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High-reliability sub-nanosecond network time synchronization method enabled by double-frequency distributed time synchronization

机译:通过双频分布式时间同步实现的高可靠性亚纳秒网络时间同步方法

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Time synchronization is a long-standing challenge in distributed systems like indoor/outdoor positioning, coordinated multi-point in 4G/5G mobile communication, etc., which require nanosecond-level high-reliable time sync networks. At present, a widely adopted solution for time sync networks is the precision time protocol specified in IEEE 1588v2, which can provide sub-microsecond sync accuracy. In addition, a novel network time sync method called distributed time synchronization has also been proposed recently, which can achieve 50-ns-level accuracy and stronger survivability in metro, regional, and backbone networks. However, both of the above methods encounter difficulties in achieving nanosecond sync accuracy and network reliability simultaneously. In this paper, by analyzing the main factors influencing the degradation of time sync accuracy, we reveal that the finite clock resolution is a major barrier to achieving nanosecond-level time synchronization. In order to establish a low-cost, high-reliability, and sub-nanosecond-level time sync network, we propose a novel network time sync method called double-frequency distributed time synchronization (DF-DTS). By selecting two specific and distinct frequencies for the sending and receiving clocks of the nodes/devices being synchronized, the time sync errors induced by the finite clock resolution can be reduced by a statistical approach. We set up a theoretical model for the DF-DTS and analyze the time sync accuracy through both mathematical derivations and network simulations. Furthermore, we propose a failure-restoration mechanism to enhance the reliability of DF-DTS networks by improving the time sync accuracy under failures and reducing the failure recovery time. Finally, we conduct both point-to-point and network time sync experiments to validate the proposed DF-DTS method. The results demonstrate that DF-DTS can achieve sub-nanosecond-level sync accuracy that is 1 -2 orders of magnitude higher than the clock resolution in a prototype four-node DF-DTS network. Moreover, a network simulation under failure cases is conducted, and the results show that our method has significant advantages in both time sync accuracy and recovery time in the failure-restoration process compared to IEEE 1588v2.
机译:在室内/室外定位,4G / 5G移动通信中的多点协作等分布式系统中,时间同步是一项长期的挑战,这些系统需要纳秒级的高可靠性时间同步网络。当前,时间同步网络广泛采用的解决方案是IEEE 1588v2中指定的精确时间协议,该协议可以提供亚微秒的同步精度。另外,最近还提出了一种称为分布式时间同步的新型网络时间同步方法,该方法可以在城域网,区域网和骨干网中实现50 ns级的精度和更强的生存能力。但是,上述两种方法都难以同时实现纳秒同步精度和网络可靠性。在本文中,通过分析影响时间同步精度下降的主要因素,我们发现有限的时钟分辨率是实现纳秒级时间同步的主要障碍。为了建立低成本,高可靠性的亚纳秒级时间同步网络,我们提出了一种新颖的网络时间同步方法,称为双频分布式时间同步(DF-DTS)。通过为同步的节点/设备的发送和接收时钟选择两个特定且不同的频率,可以通过统计方法减少由有限时钟分辨率引起的时间同步误差。我们为DF-DTS建立了理论模型,并通过数学推导和网络仿真来分析时间同步精度。此外,我们提出了一种故障恢复机制,通过提高故障下的时间同步精度并减少故障恢复时间来增强DF-DTS网络的可靠性。最后,我们进行点对点和网络时间同步实验,以验证所提出的DF-DTS方法。结果表明,DF-DTS可以实现亚纳秒级的同步精度,该精度比原型四节点DF-DTS网络中的时钟分辨率高1-2个数量级。此外,在故障情况下进行了网络仿真,结果表明,与IEEE 1588v2相比,我们的方法在故障恢复过程中的时间同步精度和恢复时间均具有明显优势。

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