Splitting an Arbitrary Three-Qubit State via a Five-Qubit Cluster State and a Bell State |
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Authors: | Gang Xu Tianai Zhou Xiu-Bo Chen Xiaojun Wang |
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Affiliation: | 1.School of Information Science and Technology, North China University of Technology, Beijing 100144, China;2.Advanced Cryptography and System Security Key Laboratory of Sichuan Province, Chengdu 610025, China;3.Information Security Center, State Key Laboratory of Networking and Switching Technology, Beijing University of Posts and Telecommunications, Beijing 100876, China;4.School of Electronic Engineering, Dublin City University, D09 W6Y4 Dublin, Ireland; |
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Abstract: | Quantum information splitting (QIS) provides an idea for transmitting the quantum state through a classical channel and a preshared quantum entanglement resource. This paper presents a new scheme for QIS based on a five-qubit cluster state and a Bell state. In this scheme, the sender transmits the unknown three-qubit secret state to two agents by the quantum channel with the Bell basis measurement three times and broadcasts the measurement results to the agents through the classical channel. The agent who restores the secret state can successfully recover the initial information to be transmitted through the appropriate unitary operation with the help of the other party. Firstly, our scheme’s process can be accurately realized by performing the applicable Bell basis measurement, single-qubit measurement, and local unitary operation instead of a multiparticle joint measurement. The splitting process of quantum information is realized through a convenient operation. Secondly, compared with some previous schemes, the efficiency of the total scheme has been improved in principle, and the qubit consumption is reduced. Finally, the security of the quantum information splitting scheme is analyzed from the perspectives of external attacks and participant attacks. It is proved that our scheme can effectively resist internal participant attacks and external eavesdropper attacks. |
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Keywords: | quantum information splitting bell basis measurement cluster state single-qubit measurement |
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