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February 20, 2026PLoS ONE0 citationsOpen Access

Hierarchical secure key assignment scheme

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KÖKadir ÖzlemIÇIbrahim ÇelikbilekSGSueda Rüveyda Güzey

Key Points

  • To develop a lightweight hierarchical key assignment mechanism that enhances access control while maintaining efficiency and security against attacks.
  • Developed a hierarchical key assignment mechanism using orthogonal projection and distributed bases.
  • Conducted an analytical complexity evaluation for the key derivation process.
  • Assessed the scheme's performance under various structured access policies.
  • Key derivation requires at most O(n_i^2) operations, ensuring efficient calculation.
  • Total key material per user is approximately 3,072 bits, significantly smaller than traditional post-quantum schemes.
  • Storage scales linearly with the number of groups, maintaining light resource usage for larger hierarchies.

Abstract

This work presents a novel hierarchical key assignment mechanism for access control, designed to be computationally lightweight and optimized for digital environments with structured access policies. By leveraging orthogonal projection and distributing a basis to each group, it enables flexible and efficient left-to-right and top-down access structures. The scheme ensures that parent groups can derive the secret keys of their child groups while preventing unauthorized reverse access. It is resilient against collusion attacks and privilege escalation, offering robust key recovery and indistinguishability properties. Moreover, it guarantees strong key indistinguishability under adversarial models and facilitates a secure rekeying process without reliance on a trusted third party. To demonstrate practical efficiency, we provide a full analytical complexity evaluation showing that key derivation requires at most 𝒪 ( n i 2 ) operations, where n i is the dimension of the assigned subspace. For typical deployment parameters used in the experiments, the total key material per user remains compact ( ≈ 3 , 072 bits), significantly smaller than well-known post-quantum schemes such as Dilithium-5 (38,912 bits). The storage requirement scales linearly with the number of groups ( ck + 1 bases for c groups with at most k members), ensuring that even large hierarchies remain lightweight. Our evaluation further shows that selective rekeying affects only the descendants of the modified group, resulting in communication overhead of 𝒪 ( m ′ λ ) bits, where m ′ is the number of affected users and λ is the key length. These results collectively highlight the scheme’s scalability, low storage footprint, and suitability for large access hierarchies.

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Cite This Study

Özlem et al. (2026) studied this question.

synapsesocial.com/papers/6997faddad1d9b11b3453eefhttps://doi.org/10.1371/journal.pone.0341637
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