Solving the Post-Quantum Control Plane Bottleneck: Energy-Aware Cryptographic Scheduling in Open RAN
Neha Gupta, Hamed Alimohammadi, Mohammad Shojafar, De Mi, and Muhammad N.M. Bhutta

TL;DR
This paper introduces an energy-aware cryptographic scheduling framework for Open RAN that mitigates post-quantum cryptography bottlenecks, reducing energy consumption while maintaining security and latency standards.
Contribution
It proposes a novel scheduling architecture combining strategic policy and tactical scheduling to optimize PQC operations in Open RAN, enhancing energy efficiency and quantum resilience.
Findings
Reduces per-handshake energy by approximately 60%
Maintains slice latency targets with optimized scheduling
Demonstrates effectiveness through discrete-event simulation
Abstract
The Open Radio Access Network (O-RAN) offers flexibility and innovation but introduces unique security vulnerabilities, particularly from cryptographically relevant quantum computers. While Post-Quantum Cryptography (PQC) is the primary scalable defence, its computationally intensive handshakes create a significant bottleneck for the RAN control plane, posing sustainability challenges. This paper proposes an energy-aware framework to solve this PQC bottleneck, ensuring quantum resilience without sacrificing operational energy efficiency. The system employs an O-RAN aligned split: a Crypto Policy rApp residing in the Non-Real-Time (Non-RT) RIC defines the strategic security envelope (including PQC suites), while a Security Operations Scheduling (SOS) xApp in the Near-RT RIC converts these into tactical timing and placement intents. Cryptographic enforcement remains at standards-compliant…
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Taxonomy
TopicsSoftware-Defined Networks and 5G · Cognitive Radio Networks and Spectrum Sensing · Cryptography and Data Security
