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March 21, 2026Future Internet2 citationsOpen Access

A Post-Quantum Secure Architecture for 6G-Enabled Smart Hospitals: A Multi-Layered Cryptographic Framework

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PDPoojitha DevarajSBS K. Md. Hussain BashaNSNithesh Nair Panarkuzhiyil Santhosh

Key Points

  • The aim is to develop a comprehensive post-quantum security architecture for 6G-enabled smart hospitals to ensure secure medical operations.
  • Developed a latency-aware multi-layered security framework.
  • Integrated hardware-rooted device authentication and post-quantum key establishment.
  • Utilized hybrid encryption and legacy-compatible key transport methods.
  • Implemented zero trust access control and metadata-driven anomaly detection.
  • Evaluated using discrete-event simulations under adversarial conditions.
  • Achieved a 48% reduction in detection latency.
  • Recorded a 68% decrease in false-positive anomaly detection rates.
  • Demonstrated a 39% improvement in end-to-end round-trip latency compared to RSA-AES architectures.

Abstract

Future 6G-enabled smart hospital infrastructures will support latency-critical medical operations such as robotic surgery, autonomous monitoring, and real-time clinical decision systems, which require communication mechanisms that ensure both ultra-low latency and long-term cryptographic security. Existing security solutions either rely on classical cryptographic protocols that are vulnerable to quantum attacks or deploy isolated post-quantum primitives without providing a unified framework for secure real-time medical command transmission. This research presents a latency-aware, multi-layered post-quantum security architecture for 6G-enabled smart hospital environments. The proposed framework establishes an end-to-end secure command transmission pipeline that integrates hardware-rooted device authentication, post-quantum key establishment, hybrid payload protection, dynamic access enforcement, and tamper-evident auditing within a coherent system design. In contrast to existing approaches that focus on individual security mechanisms, the architecture introduces a structured integration of Kyber-based key encapsulation and Dilithium digital signatures with hybrid AES-based encryption and legacy-compatible key transport, while Physical Unclonable Function authentication provides hardware-bound device identity verification. Zero Trust access control, metadata-driven anomaly detection, and blockchain-style audit logging provide continuous verification and traceability, while threshold cryptography distributes cryptographic authority to eliminate single points of compromise. The proposed architecture is evaluated using a discrete-event simulation framework representing adversarial conditions in realistic 6G medical communication scenarios, including replay attacks, payload manipulation, and key corruption attempts. Experimental results demonstrate improved security and operational efficiency, achieving a 48% reduction in detection latency, a 68% reduction in false-positive anomaly detection rate, and a 39% improvement in end-to-end round-trip latency compared to conventional RSA-AES-based architectures. These results demonstrate that the proposed framework provides a practical and scalable approach for achieving post-quantum secure and low-latency command transmission in next-generation 6G smart hospital systems.

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Cite This Study

Devaraj et al. (2026) studied this question.

synapsesocial.com/papers/69be37b96e48c4981c6779bfhttps://doi.org/10.3390/fi18030165
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