Quantum Computing Impacts on Smart City Cybersecurity Through Resilient Defense Framework
Amna Khatoon, Rubina Riaz · Ubiquitous Technology Journal · 2025
The research investigates the implications of quantum computing on smart city infrastructure with a specific focus on addressing cybersecurity challenges. Smart cities, reliant on interconnected systems, are increasingly vulnerable to zero-day attacks exacerbated by quantum computing advancements. This study aims to develop a robust defense framework integrating quantum-resilient cryptographic techniques, artificial intelligence-based anomaly detection systems, and hybrid quantum-classical simulations. The methodology utilizes lattice-based encryption schemes and hash-based signatures to fortify communications, while machine learning models such as Long Short-Term Memory networks and Convolutional Neural Networks identify complex patterns indicative of cyber threats. Evaluation within a simulated smart city environment demonstrates high detection accuracy of 97.8 percent, reduced false positive rates, and efficient resource consumption, validating the framework’s practical applicability. By bridging theoretical advancements and practical implementation, this work enhances the resilience of urban infrastructures against quantum-augmented threats. Findings contribute to the growing body of knowledge by offering scalable and adaptable solutions tailored to the resource-constrained nature of smart cities. Future research can extend this work by addressing energy efficiency, interoperability across sectors, and incorporating federated learning paradigms to enhance distributed anomaly detection. These advancements hold significant implications for securing next-generation urban systems while ensuring sustainability and operational efficiency.