Title :
Tandem coding and cryptography on wiretap channels: EXIT chart analysis
Author :
Harrison, Willie K. ; McLaughlin, Steven W.
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
June 28 2009-July 3 2009
Abstract :
Traditional cryptography assumes an eavesdropper receives an error-free copy of the transmitted ciphertext. Wyner´s wiretap channel model recognizes that at the physical layer both the intended receiver and the passive eavesdropper inevitably receive an error-prone version of the transmitted message which must be corrected prior to decryption. This paper considers the implications of using both channel and cryptographic codes under the wiretap channel model in a way that enhances the information-theoretic security for the friendly parties by keeping the information transfer to the eavesdropper small. We consider a secret-key cryptographic system with a linear feedback shift register (LFSR)-based keystream generator and observe the mutual information between an LFSR-generated sequence and the received noise-corrupted ciphertext sequence under a known-plaintext scenario. The effectiveness of a noniterative fast correlation attack, which reduces the search time in a brute-force attack, is shown to be correlated with this mutual information. For an iterative fast correlation attack on this cryptographic system, it is shown that an EXIT chart and mutual information are very good predictors of decoding success and failure by a passive eavesdropper.
Keywords :
channel coding; cryptography; shift registers; EXIT chart analysis; Wyner´s wiretap channel model; brute-force attack; channel codes; coding; cryptographic codes; cryptography; eavesdropper receives; keystream generator; linear feedback shift register; noise-corrupted ciphertext sequence; noniterative fast correlation attack; secret-key cryptographic system; wiretap channels; Computer errors; Cryptography; Data security; Decoding; Error correction; Error correction codes; Information security; Linear feedback shift registers; Mutual information; Physical layer;
Conference_Titel :
Information Theory, 2009. ISIT 2009. IEEE International Symposium on
Conference_Location :
Seoul
Print_ISBN :
978-1-4244-4312-3
Electronic_ISBN :
978-1-4244-4313-0
DOI :
10.1109/ISIT.2009.5205606