Efficient Power and Timing Side Channels for Physical Unclonable Functions

被引:0
作者
Ruehrmair, Ulrich [1 ]
Xu, Xiaolin [1 ]
Soelter, Jan [4 ]
Mahmoud, Ahmed [1 ]
Majzoobi, Mehrdad [3 ]
Koushanfar, Farinaz [3 ]
Burleson, Wayne [2 ]
机构
[1] Tech Univ Munich, D-80333 Munich, Germany
[2] Univ Massachusetts Amherst, Amherst, MA 01003 USA
[3] Rice Univ, Houston, TX 77005 USA
[4] Free Univ Berlin, D-14195 Berlin, Germany
来源
CRYPTOGRAPHIC HARDWARE AND EMBEDDED SYSTEMS - CHES 2014 | 2014年 / 8731卷
基金
美国国家科学基金会;
关键词
Physical unclonable functions (PUFs); side-channel attacks; power side channel; timing side channel; modeling attacks; machine learning; hardware security;
D O I
暂无
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
One part of the original PUF promise was their improved resilience against physical attack methods, such as cloning, invasive techniques, and arguably also side channels. In recent years, however, a number of effective physical attacks on PUFs have been developed [17,18,20,8,2]. This paper continues this line of research, and introduces the first power and timing side channels (SCs) on PUFs, more specifically on Arbiter PUF variants. Concretely, we attack so-called XOR Arbiter PUFs and Lightweight PUFs, which prior to our work were considered the most secure members of the Arbiter PUF family [28,30]. We show that both architectures can be tackled with polynomial complexity by a combined SC and machine learning approach. Our strategy is demonstrated in silicon on FPGAs, where we attack the above two architectures for up to 16 XORs and 512 bits. For comparison, in earlier works XOR-based Arbiter PUF designs with only up to 5 or 6 XORs and 64 or 128 bits had been tackled successfully. Designs with 8 XORs and 512 bits had been explicitly recommended as secure for practical use [28,30]. Together with recent modeling attacks [28,30], our work shows that unless suitable design countermeasures are put in place, no remaining member of the Arbiter PUF family resists all currently known attacks. Our work thus motivates research on countermeasures in Arbiter PUFs, or on the development of entirely new Strong PUF designs with improved resilience.
引用
收藏
页码:476 / 492
页数:17
相关论文
共 50 条
[41]   Homogeneous and Heterogeneous Feed-Forward XOR Physical Unclonable Functions [J].
Avvaru, S. V. Sandeep ;
Zeng, Ziqing ;
Parhi, Keshab K. .
IEEE TRANSACTIONS ON INFORMATION FORENSICS AND SECURITY, 2020, 15 :2485-2498
[42]   Physical Unclonable Functions in the Internet of Things: State of the Art and Open Challenges [J].
Babaei, Armin ;
Schiele, Gregor .
SENSORS, 2019, 19 (14)
[43]   Physical security in the post-quantum era A survey on side-channel analysis, random number generators, and physically unclonable functions [J].
Chowdhury, Sreeja ;
Covic, Ana ;
Acharya, Rabin Yu ;
Dupee, Spencer ;
Ganji, Fatemeh ;
Forte, Domenic .
JOURNAL OF CRYPTOGRAPHIC ENGINEERING, 2022, 12 (03) :267-303
[44]   Physical security in the post-quantum eraA survey on side-channel analysis, random number generators, and physically unclonable functions [J].
Sreeja Chowdhury ;
Ana Covic ;
Rabin Yu Acharya ;
Spencer Dupee ;
Fatemeh Ganji ;
Domenic Forte .
Journal of Cryptographic Engineering, 2022, 12 :267-303
[45]   Impact of Process Variability on FintFET 6T SRAM Cells for Physical Unclonable Functions (PUFs) [J].
Faragalla, M. R. ;
Ewais, M. A. ;
Ragai, H. F. ;
Badran, Mahmoud S. ;
Issa, Hanady H. .
2017 12TH INTERNATIONAL CONFERENCE ON COMPUTER ENGINEERING AND SYSTEMS (ICCES), 2017, :31-36
[46]   Aging Effects on Ring-Oscillator-Based Physical Unclonable Functions on FPGAs [J].
Gehrer, Stefan ;
Leger, Sebastien ;
Sigl, Georg .
2015 INTERNATIONAL CONFERENCE ON RECONFIGURABLE COMPUTING AND FPGAS (RECONFIG), 2015,
[47]   A Study of High Temperature Effects on Ring Oscillator based Physical Unclonable Functions [J].
Douadi, Aghiles ;
Di Natale, Giorgio ;
Maistri, Paolo ;
Vatajelu, Elena-Ioana ;
Beroulle, Vincent .
2023 IEEE 29TH INTERNATIONAL SYMPOSIUM ON ON-LINE TESTING AND ROBUST SYSTEM DESIGN, IOLTS, 2023,
[48]   Secret Key Generation Over Biased Physical Unclonable Functions With Polar Codes [J].
Chen, Bin ;
Willems, Frans M. J. .
IEEE INTERNET OF THINGS JOURNAL, 2019, 6 (01) :435-445
[49]   A Comprehensive Review on Physical Unclonable Functions Based on Resistive Random Access Memory [J].
Zahoor, Furqan ;
Bature, Usman Isyaku ;
Nisar, Arshid ;
Alzahrani, Ali ;
Abbas, Haider ;
Bashir, Faisal .
ACS APPLIED ELECTRONIC MATERIALS, 2025, 7 (14) :6215-6242
[50]   On the practical use of physical unclonable functions in oblivious transfer and bit commitment protocols [J].
Ruhrmair, Ulrich ;
van Dijk, Marten .
JOURNAL OF CRYPTOGRAPHIC ENGINEERING, 2013, 3 (01) :17-28