Quality of Security Guarantees for and with Physical Unclonable Functions and Biometric Secrecy Systems

Author:

Günlü Onur1ORCID,Schaefer Rafael F.2ORCID,Poor H. Vincent3ORCID

Affiliation:

1. Information Coding Division, Linköping University, 581 83 Linköping, Sweden

2. Chair of Information Theory and Machine Learning, BMBF Research Hub 6G-life, Cluster of Excellence “Centre for Tactile Internet with Human-in-the-Loop (CeTI)”, and 5G Lab Germany, Technische Universität Dresden, 01062 Dresden, Germany

3. Department of Electrical and Computer Engineering, Princeton University, Princeton, NJ 08544, USA

Abstract

Unique digital circuit outputs, considered as physical unclonable function (PUF) circuit outputs, can facilitate a secure and reliable secret key agreement. To tackle noise and high correlations between the PUF circuit outputs, transform coding methods combined with scalar quantizers are typically applied to extract the uncorrelated bit sequences reliably. In this paper, we create realistic models for these transformed outputs by fitting truncated distributions to them. We also show that the state-of-the-art models are inadequate to guarantee a target reliability level for all PUF outputs, which also means that secrecy cannot be guaranteed. Therefore, we introduce a quality of security parameter to control the percentage of the PUF circuit outputs for which a target security level can be guaranteed. By applying the finite-length information theory results to a public ring oscillator output dataset, we illustrate that security guarantees can be provided for each bit extracted from any PUF device by eliminating only a small subset of PUF circuit outputs. Furthermore, we conversely show that it is not possible to provide reliability or security guarantees without eliminating any PUF circuit output. Our holistic methods and analyses can be applied to any PUF type, as well as any biometric secrecy system, with continuous-valued outputs to extract secret keys with low hardware complexity.

Funder

ELLIIT funding endowed by the Swedish government

ZENITH Research and Leadership Career Development Fund

German Federal Ministry of Education and Research (BMBF) on 6G Communication Systems

Germany’s Excellence Strategy—EXC 2050/1 Cluster of Excellence “Centre for Tactile Internet with Human-in-the- Loop”

U.S. National Science Foundation

Publisher

MDPI AG

Subject

General Physics and Astronomy

Reference42 articles.

1. Gassend, B. (2003). Physical Random Functions. [Master’s Thesis, M.I.T.].

2. Pappu, R. (2001). Physical One-way Functions. [Ph.D. Thesis, M.I.T.].

3. Devadas, S., Gassend, B., Clarke, D., and Van Dijk, M. (2007). Controlling Access to Device-Specific Information. (App. 11/421, 609), US Patent.

4. Günlü, O. (2018). Key Agreement with Physical Unclonable Functions and Biometric Identifiers. [Ph.D. Thesis, Technical University of Munich].

5. Kusters, L., Günlü, O., and Willems, F.M. (June, January 31). Zero Secrecy Leakage for Multiple Enrollments of Physical Unclonable Functions. Proceedings of the 2018 Symposium on Information Theory and Signal Processing in the Benelux, Enschede, The Netherlands.

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