The field of cyber-physical energy systems is rapidly evolving, with a focus on enhancing security, resilience, and efficiency. Recent developments have centered around the integration of advanced technologies, such as artificial intelligence, IoT, and quantum key distribution, to improve the reliability and sustainability of energy systems. Notably, researchers are exploring innovative approaches to detect and mitigate cyber threats, optimize energy storage and transmission, and develop more effective control strategies for distributed energy resources. Noteworthy papers in this area include: The paper 'Cyber-Physical Systems on the Megawatt Scale: The impact of battery control on grid frequency stability' which identifies an emerging risk at the intersection of cyber-physical coupling and control system design. The paper 'Ultrafast Grid Impedance Identification in $dq$-Asymmetric Three-Phase Power Systems' which proposes a non-parametric frequency-domain method to identify small-signal $dq$-asymmetric grid impedances.
Advancements in Cyber-Physical Energy Systems
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Cyber-Physical Systems on the Megawatt Scale: The impact of battery control on grid frequency stability
Aggregate Modeling of Air-Conditioner Loads Under Packet-based Control with Both On and Off Grid Access Requests
Observability and parameter estimation of a generic model for aggregated distributed energy resources
Conceptualizing Smart City Applications: Requirements, Architecture, Security Issues and Emerging Trends