In this paper, drawing upon quantum state masking theory, we first propose a method that utilizes d-dimensional orthogonal arrays to encode quantum states into a multi-party quantum system. Building upon this foundation, we then design a quantum secret sharing scheme whose security is rooted in the principles of quantum information masking. This scheme is designed based on the hyperstar structure to define the access structure. Additionally, the protocol enables the transmission of arbitrary d-dimensional quantum states through quantum channels constructed using orthogonal arrays, ensuring that only participants within the access structure can recover the secret. We have thoroughly analyzed the security of this scheme against major quantum attacks, including intercept-resend attacks, entangle-measure attacks, and dishonest participant attack. In conclusion, our analysis examines the impact of four common types of noise on this protocol, confirming its immunity to dit-flip noise. Furthermore, we present a comparative analysis of the proposed scheme against existing quantum secret sharing protocols, highlighting its respective advantages.
Bai et al. (Fri,) studied this question.