English

Secure and Reliable Key Agreement with Physical Unclonable Functions

Cryptography and Security 2020-02-28 v2 Information Theory Image and Video Processing Signal Processing math.IT Probability

Abstract

Different transforms used in binding a secret key to correlated physical-identifier outputs are compared. Decorrelation efficiency is the metric used to determine transforms that give highly-uncorrelated outputs. Scalar quantizers are applied to transform outputs to extract uniformly distributed bit sequences to which secret keys are bound. A set of transforms that perform well in terms of the decorrelation efficiency is applied to ring oscillator (RO) outputs to improve the uniqueness and reliability of extracted bit sequences, to reduce the hardware area and information leakage about the key and RO outputs, and to maximize the secret-key length. Low-complexity error-correction codes are proposed to illustrate two complete key-binding systems with perfect secrecy, and better secret-key and privacy-leakage rates than existing methods. A reference hardware implementation is also provided to demonstrate that the transform-coding approach occupies a small hardware area.

Keywords

Cite

@article{arxiv.2002.11687,
  title  = {Secure and Reliable Key Agreement with Physical Unclonable Functions},
  author = {Onur Günlü and Tasnad Kernetzky and Onurcan İşcan and Vladimir Sidorenko and Gerhard Kramer and Rafael F. Schaefer},
  journal= {arXiv preprint arXiv:2002.11687},
  year   = {2020}
}

Comments

An extra term in the last page due to the mismatch between the Arxiv compiler and MDPI template is eliminated. No other changes

R2 v1 2026-06-23T13:55:01.563Z