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MRÁZEK, V. SÝS, M. VAŠÍČEK, Z. SEKANINA, L. MATYÁŠ, V.
Originální název
Evolving Boolean Functions for Fast and Efficient Randomness Testing
Typ
článek ve sborníku ve WoS nebo Scopus
Jazyk
angličtina
Originální abstrakt
The security of cryptographic algorithms (such as block ciphers and hash functions) is often evaluated in terms of their output randomness. This paper presents a novel method for the statistical randomness testing of cryptographic primitives, which is based on the evolutionary construction of the so-called randomness distinguisher. Each distinguisher is represented as a Boolean polynomial in the Algebraic Normal Form. The previous approach, in which the distinguishers were developed in two phases by means of the brute-force method, is replaced with a more scalable evolutionary algorithm (EA). On seven complex datasets, this EA provided distinguishers of the same quality as the previous approach, but the execution time was in practice reduced 40 times. This approach allowed us to perform a more efficient search in the space of Boolean distinguishers and to obtain more complex high-quality distinguishers than the previous approach.
Klíčová slova
Boolean function, genetic algorithm, statistical randomness testing
Autoři
MRÁZEK, V.; SÝS, M.; VAŠÍČEK, Z.; SEKANINA, L.; MATYÁŠ, V.
Vydáno
14. 4. 2018
Nakladatel
Association for Computing Machinery
Místo
Kyoto
ISBN
978-1-4503-5618-3
Kniha
Proceedings of the Genetic and Evolutionary Computation Conference (GECCO '18)
Strany od
1302
Strany do
1309
Strany počet
8
URL
https://www.fit.vut.cz/research/publication/11686/
BibTex
@inproceedings{BUT155018, author="Vojtěch {Mrázek} and Marek {Sýs} and Zdeněk {Vašíček} and Lukáš {Sekanina} and Václav {Matyáš}", title="Evolving Boolean Functions for Fast and Efficient Randomness Testing", booktitle="Proceedings of the Genetic and Evolutionary Computation Conference (GECCO '18)", year="2018", pages="1302--1309", publisher="Association for Computing Machinery", address="Kyoto", doi="10.1145/3205455.3205518", isbn="978-1-4503-5618-3", url="https://www.fit.vut.cz/research/publication/11686/" }