In this article, we focus on the concept of locally-APN-ness (``APN" is the abbreviation of the well-known notion of Almost Perfect Nonlinear) introduced by Blondeau, Canteaut, and Charpin, which makes the corpus of S-boxes somehow larger regarding their differential uniformity and, therefore, possibly, more suitable candidates against the differential attack (or their variants). Specifically, given two coprime positive integers $m$ and $k$ such that $\gcd(2^m+1,2^k+1)=1$, we investigate the locally-APN-ness property of an infinite family of Niho type power functions in the form $F(x)=x^{s(2^m-1)+1}$ over the finite field ${\mathbb F}_{2^{2m}}$ for $s=(2^k+1)^{-1}$, where $(2^k+1)^{-1}$ denotes the multiplicative inverse modulo $2^m+1$. By employing finer studies of the number of solutions of certain equations over finite fields (with even characteristic) as well as some subtle manipulations of solving some equations, we prove that $F(x)$ is locally APN and determine its differential spectrum. It is worth noting that computer experiments show that this class of locally-APN power functions covers all Niho type locally-APN power functions for $2\leq m\leq10$. In addition, we also determine the boomerang spectrum of $F(x)$ by using its differential spectrum, which particularly generalizes a recent result by Yan, Zhang, and Li.
翻译:在本篇文章中,我们侧重于当地-APN-ness(“APN”)的概念(“APN”)是布隆多、坎提奥和夏尔潘提出的众所周知的几乎完美非线性概念的缩写,它使S-boxes的体积在差异统一性方面有所扩大,因此,可能更适合针对不同攻击(或其变式)的候选人。具体地说,鉴于两个正数正数整数美元和1美元,例如$gcd(2 ⁇ m+1,2 ⁇ k+1)=1美元,我们用F(x)=x(2 ⁇ 1+1)和Charpin等形式调查尼霍型的无限电源功能的当地-APN-ness属性属性。我们用某种精细数研究尼奥型电源功能的本地-10美元计算值,我们用某种正数的平方程式来决定其本地-平面的平方程式。