Secure dynamic semi-quantum anonymous secret sharing utilizing Greenberger-Horne-Zeilinger-like states
Abstract
Quantum secret sharing (QSS) enables secure secret distribution via quantum mechanics, requiring authorized participants to collaborate for recovery. However, practical scenarios often involve classical users, demand recipient anonymity, and need dynamic participant management—features not simultaneously supported by existing schemes. This work presents a secure dynamic semiquantum anonymous secret sharing (DSQASS) protocol using Greenberger-Horne-Zeilinger-like (GHZ-like) states. The design integrates three practical capabilities: semi-quantum operation for classical participants, dynamic membership updates, and statistical receiver anonymity. Rigorous analysis verifies the protocol’s correctness and resilience against internal and external adversaries. Simulations on a quantum cloud platform confirm its feasibility in hybrid quantum-classical environments.