A classification of S-boxes generated by Orthogonal Cellular Automata
Abstract
Most of the approaches published in the literature to construct S-boxes via Cellular Automata (CA) work by either iterating a finite CA for several time steps, or by a one-shot application of the global rule. The main characteristic that brings together these works is that they employ a single CA rule to define the vectorial Boolean function of the S-box. In this work, we explore a different direction for the design of S-boxes that leverages on Orthogonal CA (OCA), i.e. pairs of CA rules giving rise to orthogonal Latin squares. The motivation stands on the facts that an OCA pair already defines a bijective transformation, and moreover the orthogonality property of the resulting Latin squares ensures a minimum amount of diffusion. We exhaustively enumerate all S-boxes generated by OCA pairs of diameter , and measure their nonlinearity. Interestingly, we observe that for and all S-boxes are linear, despite the underlying CA local rules being nonlinear. The smallest nonlinear S-boxes emerges for , but their nonlinearity is still too low to be used in practice. Nonetheless, we unearth an interesting structure of linear OCA S-boxes, proving that their Linear Components Space (LCS) is itself the image of a linear CA, or equivalently a polynomial code. We finally classify all linear OCA S-boxes in terms of their generator polynomials.
Cite
@article{arxiv.2303.05228,
title = {A classification of S-boxes generated by Orthogonal Cellular Automata},
author = {Luca Mariot and Luca Manzoni},
journal= {arXiv preprint arXiv:2303.05228},
year = {2023}
}
Comments
22 pages. Extended version of "On the Linear Components Space of S-boxes Generated by Orthogonal Cellular Automata" arXiv:2203.14365v, presented at ACRI 2022. Currently under submission at Natural Computing