Mathematics > Combinatorics
[Submitted on 30 Jun 2022 (v1), last revised 12 Jun 2024 (this version, v2)]
Title:Projective tilings and full-rank perfect codes
View PDF HTML (experimental)Abstract:A tiling of a vector space $S$ is the pair $(U,V)$ of its subsets such that every vector in $S$ is uniquely represented as the sum of a vector from $U$ and a vector from $V$. A tiling is connected to a perfect codes if one of the sets, say $U$, is projective, i.e., the union of one-dimensional subspaces of $S$. A tiling $(U,V)$ is full-rank if the affine span of each of $U$, $V$ is $S$. For finite non-binary vector spaces of dimension at least $6$ (at least $10$), we construct full-rank tilings $(U,V)$ with projective $U$ (both $U$ and $V$, respectively). In particular, that construction gives a full-rank ternary $1$-perfect code of length $13$, solving a known problem. We also discuss the treatment of tilings with projective components as factorizations of projective spaces.
Keywords: perfect codes, tilings, group factorization, full-rank tilings, projective geometry
Submission history
From: Denis Krotov [view email][v1] Thu, 30 Jun 2022 21:26:10 UTC (10 KB)
[v2] Wed, 12 Jun 2024 20:36:28 UTC (18 KB)
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