Paper 2026/388

Necessary and Sufficient Conditions for the Existence of Ideal Linear Secret Sharing Schemes for Arbitrary Access Structures

Zheng Chen, Guangzhou University
Qiuxia Xu, Guangdong Polytechnic Normal University
Chunming Tang, Guangzhou University
Abstract

Determining whether an arbitrary access structure can be realized by an ideal linear secret sharing scheme is an important research topic. we use linear codes as the main tool to construct matrices $H$ and $G$ over a finite field $\mathbb{F}_q$ for a given access structure $\Gamma_{\min}$, and show that a necessary and sufficient condition for the existence of an ideal linear secret sharing scheme realizing $\Gamma_{\min}$ is that the equation $GH^{\mathsf{T}}=0$ has a solution. If this equation has a solution, then $H$ serves as the parity-check matrix of a linear code that realizes $\Gamma_{\min}$, and $G$ is the corresponding generator matrix. Furthermore, we prove that the result is equivalent to the following statement: there exists an ideal linear code for realizing the $\Gamma_{\min}$ if and only if it is the port of a matroid that is representable over $\mathbb{F}_q$.

Metadata
Available format(s)
PDF
Category
Foundations
Publication info
Preprint.
Keywords
ideal linear secret sharing schemelinear codesaccess structuredual access structurematroid
Contact author(s)
zchen @ e gzhu edu cn
xia_mi0622 @ 126 com
ctang @ gzhu edu cn
History
2026-02-26: approved
2026-02-25: received
See all versions
Short URL
https://ia.cr/2026/388
License
Creative Commons Attribution
CC BY

BibTeX

@misc{cryptoeprint:2026/388,
      author = {Zheng Chen and Qiuxia Xu and Chunming Tang},
      title = {Necessary and Sufficient Conditions for the Existence of Ideal Linear Secret Sharing Schemes for Arbitrary Access Structures},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/388},
      year = {2026},
      url = {https://eprint.iacr.org/2026/388}
}
Note: In order to protect the privacy of readers, eprint.iacr.org does not use cookies or embedded third party content.