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March 4, 2026Journal of Cybersecurity and Privacy0 citationsOpen Access

A Lightweight Post-Quantum Anonymous Attestation Framework for Traceable and Comprehensive Privacy Preservation in VANETs

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EAEsti Rahmawati AgustinaKRKalamullah RamliRHRuki Harwahyu

Key Points

  • This research aims to develop a lightweight and privacy-preserving authentication system for vehicular networks resistant to quantum attacks.
  • Proposed a new protocol called PQ-TDAA.
  • Combined NIST-standard Dilithium2 and Falcon-512 signatures with blind signatures and simplified Schnorr proofs.
  • Evaluated performance using platforms like SageMath and NS-3.
  • Tested on ARM Cortex-A76 to assess real-world deployment capabilities.
  • Reduced signature proof size by 69.2% compared to previous models.
  • Achieved end-to-end delays of 8.1 ms and 49.7 ms for 10 and 20 vehicles respectively.
  • Demonstrated goodput of 64.7 Mbps on congested 802.11p channels.
  • Achieved V2V cycle times under 0.5 ms with practical application in real conditions.

Abstract

Vehicular ad hoc networks (VANETs) require authentication systems that balance privacy, scalability, and post-quantum security. While lattice-based V-LDAA offers quantum resistance, it faces challenges in signature size, traceability, and integration. We propose post-quantum traceable direct anonymous attestation (PQ-TDAA), combining National Institute of Standards and Technology (NIST)-standard Dilithium2 and Falcon-512 signatures with adapted Beullens-style blind signatures and Fiat–Shamir simplified Schnorr proofs, reducing proof size by 69.2% (8 kB vs. V-LDAA’s 26 kB) and supporting European Telecommunications Standards Institute Technical Specification (ETSI TS) 102 941-compliant traceability through Road Side Unit (RSU)-assisted verification. Evaluated using SageMath, Python 3.11, and NS-3, PQ-TDAA-Falcon-512 achieves 8.1 ms and 49.7 ms end-to-end delays at 10 and 20 vehicles, respectively, with 64.7 Mbps goodput on congested 802.11p channels, showing promise for densities of ≤50 vehicles and advantages over Dilithium2. Real-world validation on ARM Cortex-A76 (Raspberry Pi 5, emulating automotive OBUs) yields sub-0.5 ms V2V cycles within 100 ms beacon intervals, supporting practical embedded deployment. Future work will extend PQ-TDAA to emerging 5G and NR-V2X settings, integrate more realistic mobility and channel models through coupled NS-3 and SUMO co-simulation, and investigate side-channel resistance for enhanced scalability and robustness in real deployments.

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Cite This Study

Agustina et al. (2026) studied this question.

synapsesocial.com/papers/69a7ccc3d48f933b5eed893bhttps://doi.org/10.3390/jcp6020044
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Enhancing VANET Security with Lattice-Based Cryptography and Dynamic Pseudonym Updates2025
  2. 2Lattice-Based Identity Authentication Protocol with Enhanced Privacy and Scalability for Vehicular Ad Hoc Networks2025
  3. 3Quantum-Secure Certificate-Less Conditional Privacy-Preserving Authentication for VANET2024
  4. 4Integrating Elliptic Curve Encryption and Post‐Quantum Cryptography for Secure VANETs Using Fog Computing and SDN2026
  5. 5Quantum-Resilient Secure Context-Aware Trust-Based Routing with Preemptive Verifiable Key Handover for Vehicular Ad Hoc Networks2025