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A Novel Artificial Intelligence Based Timing Synchronization Scheme for Smart Grid Applications

机译:基于智能电网应用的新型人工智能时序同步方案

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The smart grid control applications necessitate real-time communication systems with time efficiency for real-time monitoring, measurement, and control. Time-efficient communication systems should have the ability to function in severe propagation conditions in smart grid applications. The data/packet communications need to be maintained by synchronized timing and reliability through equally considering the signal deterioration occurrences, which are propagation delay, phase errors and channel conditions. Phase synchronization plays a vital part in the digital smart grid to get precise and real-time control measurement information. IEEE C37.118 and IEC 61850 had implemented for the synchronization communication to measure as well as control the smart grid applications. Both IEEE C37.118 and IEC 61850 experienced a huge propagation and packet delays due to synchronization precision issues. Because of these delays and errors, measurement and monitoring of the smart grid application in real-time is not accurate. Therefore, it has been investigated that the time synchronization in real-time is a critical challenge in smart grid applications, and for this issue, other errors raised consequently. The existing communication systems are designed with the phasor measurement unit (PMU) along with communication protocol IEEE C37.118 and uses the GPS timestamps as the reference clock stamps. The absence of GPS increases the clock offsets, which surely can hamper the synchronization process and the full control measurement system that can be imprecise. Therefore, to reduce this clock offsets, a new algorithm is needed which may consider any alternative reference timestamps rather than GPS. The revolutionary Artificial Intelligence (AI) enables the industrial revolution to provide a significant performance to engineering solutions. Therefore, this article proposed the AI-based Synchronization scheme to mitigate smart grid timing issues. The backpropagation neural network is applied as the AI method that employs the timing estimations and error corrections for the precise performances. The novel AIFS scheme is considered the radio communication functionalities in order to connect the external timing server. The performance of the proposed AIFS scheme is evaluated using a MATLAB-based simulation approach. Simulation results show that the proposed scheme performs better than the existing system.
机译:智能电网控制应用需要实时通信系统,具有时间效率的实时监控,测量和控制。节省的通信系统应具有在智能电网应用中的严重传播条件下起作用的能力。通过同等地考虑信号劣化发生,需要通过同步的定时和可靠性来维持数据/分组通信,这是传播延迟,相位误差和信道条件。相位同步在数字智能电网中播放一个重要的部分,以获得精确和实时控制测量信息。 IEEE C37.118和IEC 61850已为同步通信实施,以测量和控制智能电网应用。由于同步精度问题,IEEE C37.118和IEC 61850都经历了巨大的传播和数据包延迟。由于这些延迟和错误,实际测量和智能电网应用的测量和监控不准确。因此,已经调查了实时的时间同步是智能电网应用中的一个关键挑战,而对于此问题,因此因此提出了其他错误。现有通信系统与相量测量单元(PMU)一起设计,以及通信协议IEEE C37.118,并使用GPS时间戳作为参考时钟标记。没有GPS增加了时钟偏移,这肯定会妨碍同步过程和可以不精确的全控制测量系统。因此,为了减少该时钟偏移,需要一种新的算法,其可以考虑任何替代参考时间戳而不是GPS。革命性的人工智能(AI)使工业革命能够为工程解决方案提供显着性能。因此,本文提出了基于AI的同步方案来缓解智能电网时序问题。 BackPropagation神经网络被应用于采用精确性能的定时估计和纠错的AI方法。新颖的AIFS方案被认为是无线电通信功能,以连接外部定时服务器。使用基于MATLAB的仿真方法评估所提出的AIFS方案的性能。仿真结果表明,该方案的表现优于现有系统。

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