Towards accurate keyspace analysis of chaos-based image ciphers

dc.contributor.authorAlawida, Moatsum
dc.contributor.authorTeh, Je Sen
dc.contributor.authorAbba, Abubakar
dc.date.accessioned2024-09-06T07:40:18Z
dc.date.available2024-09-06T07:40:18Z
dc.date.issued2024-03-02
dc.descriptionA secret key is a sequence of bits that a cryptographic algorithm uses to convert plaintext into ciphertext and vice versa. A key is generally defined by its length in bits, n and the keyspace (number of possible keys) is normally derived as a function of the key length, . Symmetric encryption relies on a single key for both encryption and decryption while asymmetric or public-key encryption uses one for encryption and another for decryption. Communication between two parties is usually secured using symmetric encryption, with its secret key being distributed using asymmetric algorithms. The reason for this is that symmetric ciphers are significantly faster than their asymmetric counterparts.
dc.description.abstractIn recent years, there has been a surge in new chaos-based cryptographic algorithms, many of which claim to have unusually large keyspaces. Although cryptographic primitives such as symmetric-key ciphers should have a secret keyspace large enough to resist brute force attacks, simply increasing the size of a secret key may not lead to improved security margins. An n-bit key may not necessarily have a keyspace of due to the key scheduling algorithm or how the key is used. In this paper, we cryptanalyse several chaos-based algorithms from the perspective of their key schedules. Our numerical analysis is based on the known-plaintext attack model, Kerckhoff’s principle and considers the number representations used for real number computation. Our analysis reveals that the actual security margins for these ciphers are significantly lower, some by a factor of over than what was claimed. We then provide accurate keyspace estimates for these ciphers. Finally, we highlight alternative solutions for how secret keys can be used in the context of chaos-based cryptography and propose a simple key schedule as a proof of concept. Despite its simplicity, the proposed key schedule not only ensures that the keyspace matches the key length but also passes both the NIST and ENT statistical test suites, making it a viable option for generating secure cryptographic keys. Our work contributes towards addressing one of the fundamental problems in chaos-based cryptography that limits its real-world impact and reputation within the cryptographic community. Keywords: Chaos theory; Cryptosystems; Image ciphers; Key schedule; Keyspace
dc.identifier.citationAbba, A., Teh, J. S., & Alawida, M. (2024). Towards accurate keyspace analysis of chaos-based image ciphers. Multimedia Tools and Applications, 1-20.
dc.identifier.doihttps://doi.org/10.1007/s11042-024-18628-8
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/6374
dc.language.isoen
dc.publisherSpringer
dc.titleTowards accurate keyspace analysis of chaos-based image ciphers
dc.typeArticle

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