Blockchain has recently been depicted as a secure protocol for information exchange in cyber-physical microgrids. However, it is still found vulnerable to consensus manipulation attacks. These stealth attacks are often difficult to detect as they use kernel-level access to mask their actions. In this paper, we firstly build a trusted and secured peer-to-peer network mechanism for physical DC microgrids' validation of transactions over Distributed Ledger. Secondly, we leverage from a physics-informed approach for detecting malware-infected nodes and then recovering from stealth attacks using a self-healing recovery scheme augmented into the microgrid Blockchain network. This scheme allows compromised nodes to adapt to a reconstructed trustworthy signal in a multi-hop manner using corresponding measurements from the reliable nodes in the network. Additionally, recognizing the possible threat of denial-of-service attacks and random time delays (where information sharing via communication channels is blocked), we also integrate a model-free predictive controller with the proposed system that can locally reconstruct an expected version of the attacked/delayed signals. This supplements the capabilities of Blockchain, enabling it to detect and mitigate consensus manipulation attempts, and network latencies.
翻译:最近,链条被描述为在网络物理微电网中进行信息交流的安全协议。然而,仍然发现它很容易受到协商一致操纵的攻击。这些隐形攻击往往难以被察觉,因为它们使用内核层的进入来掩盖其行动。在本文中,我们首先建立了一个可靠的同侪网络机制,以便实际DC微电网对分配式磁盘交易交易的验证。第二,我们利用物理学知情的方法,探测受恶意污染的节点,然后利用扩至微电网的自愈合回收计划从隐形攻击中恢复过来。这个计划允许被破坏的节点以多点的方式适应经过重建的可靠信号,利用网络可靠节点的相应测量。此外,我们认识到可能存在拒绝服务攻击和随机拖延(通过通信渠道分享信息被阻断)的威胁,我们还将一个无模式的预测控制器与拟议的系统结合起来,以便在当地重建一个预期的被攻击/延迟的信号版本。这补充了链链路的能力,使其能够探测和减少协商一致的操纵企图以及网络的迟滞。</s>