Improved Meet-in-the-Middle Attacks on Reduced-Round Deoxys-BC-256

Author:

Liu Ya12,Shi Bing1,Gu Dawu2,Zhao Fengyu1,Li Wei345,Liu Zhiqiang2

Affiliation:

1. Department of Computer Science and Engineering University of Shanghai for Science and Technology, Shanghai 200093, China

2. Department of Computer Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China

3. School of Computer Science and Technology, Donghua University, Shanghai 201620, China

4. Shanghai Key Laboratory of Scalable Computing and Systems, Shanghai, 200240, China

5. Shanghai Key Laboratory of Integrate Adminstration Technologies for Information Security, Shanghai 200240, China

Abstract

Abstract In ASIACRYPT 2014, Jean et al. proposed the authentication encryption scheme Deoxys, which is one of the third-round candidates in CAESAR competition. Its internal block cipher is called Deoxys-BC that adopts the tweakey frame. Deoxys-BC has two versions of the tweakey size that are 256 bits and 384 bits, denoted by Deoxys-BC-256 and Deoxys-BC-384, respectively. In this paper, we revaluate the security of Deoxys-BC-256 against the meet-in-the-middle attack to obtain some new results. First, we append one round at the top and two rounds at the bottom of a 6-round distinguisher to form a 9-round truncated differential path with the probability of $2^{-144}$. Based on it, the adversary can attack 9-round Deoxys-BC-256 with $2^{108}$ chosen plaintext-tweaks, $2^{113.6}$ encryptions and $2^{102}$ blocks. Second, we construct a new 6.5-round distinguisher to form 10-round attacking path with the probability of $2^{-152}$. On the basis of it, the adversary could attack 10-round Deoxys-BC-256 with $2^{115}$ chosen plaintext-tweaks, $2^{171}$ encryptions and $2^{152}$ blocks. These two attacks improve the previous cryptanalytic results on reduced-round Deoxys-BC-256 against the meet-in-the-middle attack.

Publisher

Oxford University Press (OUP)

Subject

General Computer Science

Reference24 articles.

1. Tweaks and Keys for Block Ciphers: The TWEAKEY Framework;Jean,2014

2. Tweakable Block Ciphers;Liskov,2002

3. The Software Performance of Authenticated-Encryption Modes;Krovetz,2011

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