DocumentCode :
1837981
Title :
Application of mismatched Cellular Nonlinear Networks for Physical Cryptography
Author :
Csaba, Gyorgy ; Xueming Ju ; Zhiqian Ma ; Qingqing Chen ; Porod, W. ; Schmidhuber, J. ; Schlichtmann, U. ; Lugli, P. ; Ruhrmair, U.
Author_Institution :
Inst. for Nanoelectron., Tech. Univ. of Munich, Munich, Germany
fYear :
2010
fDate :
3-5 Feb. 2010
Firstpage :
1
Lastpage :
6
Abstract :
This paper proposes the use of Cellular Non-Linear Networks (CNNs) as physical uncloneable functions (PUFs). We argue that analog circuits offer higher security than existing digital PUFs and that the CNN paradigm allows us to build large, unclonable, and scalable analog PUFs, which still show a stable and repeatable input-output behavior. CNNs are dynamical arrays of locally-interconnected cells, with a cell dynamics that depends upon the interconnection strengths to their neighbors. They can be designed to evolve in time according to partial differential equations. If this If this equation describes a physical phenomenon, then the CNN can simulate a complex physical system on-chip. This can be exploited to create electrical PUFs with high relevant structural information content. To illustrate our paradigm at work, we design a circuit that directly emulates nonlinear wave propagation phenomena in a random media. It effectively translates the complexity of optical PUFs into electrical circuits.
Keywords :
cellular neural nets; cryptography; nonlinear network analysis; partial differential equations; random media; CNN paradigm; analog circuits; electrical circuits; mismatched cellular nonlinear networks; nonlinear wave propagation phenomena; optical PUF complexity; partial differential equations; physical cryptography; physical system on-chip; physical uncloneable functions; random media; structural information content; Analog circuits; Cellular networks; Cellular neural networks; Circuit simulation; Cryptography; Integrated circuit interconnections; Nonlinear equations; Nonlinear wave propagation; Partial differential equations; System-on-a-chip; Analog circuits; Cellular Nonlinear Networks (CNN); Physical Cryptography; Physical Uncloneable Functions (PUF);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cellular Nanoscale Networks and Their Applications (CNNA), 2010 12th International Workshop on
Conference_Location :
Berkeley, CA
Print_ISBN :
978-1-4244-6679-5
Type :
conf
DOI :
10.1109/CNNA.2010.5430303
Filename :
5430303
Link To Document :
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