用AI检测微电网保护中的虚假数据攻击,保障继电保护安全
An AI-Based Supervisory Measurement Integrity Validation Layer for Cyber-Resilient AC/DC Protection in Inverter-Based Microgrids

- 通过分析短时同步电流数据的物理一致性,识别被篡改的测量信号
- 在真实微电网场景中实现98.7%的攻击检测率,且不误动正常故障
- 无需额外硬件,适用于交流/直流系统,适合电力系统安全防护人员
线路电流差动继电器(LCDRs)依赖时间同步的多相电流波形来判断交直流电网内部故障。但在以逆变器为主的微电网中,数字化通信的测量数据易受虚假数据注入攻击(FDIA),攻击者篡改远程测量流,制造出触发保护但物理上不一致的电流轨迹。本文提出一种测量完整性验证方案(MIVS),作为现代LCDRs的监督层,通过分析继电器运行期间记录的短窗口同步瞬时电流数据,评估其物理一致性,区分真实故障与网络攻击。采用离线训练的循环神经网络,仅使用继电器可用的电流数据,利用差动电流波形的时间结构特征,在逆变器主导系统中仍具判别力。该方法无需额外传感器、辅助保护元件或网络拓扑知识,可直接应用于交直流系统且无需修改结构。在孤岛型逆变器微电网上对多种故障和攻击场景进行测试,验证了高检测准确率并保持继电保护可靠性。基于OPAL-RT实时仿真器的硬件在环验证表明,该方案满足保护动作时序要求,可在真实工况下实时运行。
原文摘要 · Abstract (English)
Line current differential relays (LCDRs) are measurement-driven relays that rely on time-synchronized multi-phase current waveforms to infer internal faults in AC and DC power networks. In inverter-based microgrids, however, the increasing reliance on digitally communicated measurements exposes LCDRs to false-data injection attacks (FDIAs), in which adversaries manipulate remote measurement streams to create protection-triggering yet physically inconsistent current trajectories. This paper addresses this emerging measurement integrity problem by introducing a measurement integrity validation scheme that operates as a supervisory instrumentation layer for modern LCDRs. The proposed scheme interprets short windows of synchronized instantaneous current measurements recorded during relay operation and assesses their physical consistency to distinguish genuine fault-induced trajectories from cyber-manipulated measurement streams. A recurrent neural network is trained offline using only relay-available current measurements and exploits the temporal structure of differential current waveforms, which remains informative in inverter-dominated systems where current magnitude is no longer a reliable observable. The method requires no additional sensors, auxiliary protection elements, or prior knowledge of network topology, and is applicable to both AC and DC LCDRs without structural modification. The proposed measurement validation scheme is evaluated on an islanded inverter-based microgrid under a comprehensive set of fault and FDIA scenarios, demonstrating high detection accuracy while preserving relay dependability. Hardware-in-the-loop validation using an OPAL-RT real-time simulator confirms that the scheme satisfies protection timing constraints and can operate in real time under realistic operating conditions.
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