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Channel parameters-independent multi-hop nondestructive teleportation |
Hua-Yang Li(李华阳)1, Yu-Zhen Wei(魏玉震)2, Yi Ding(丁祎)1, and Min Jiang(姜敏)1,3,† |
1 School of Electronics & Information Engineering, Soochow University, Suzhou 215006, China; 2 School of Information Engineering, Huzhou University, Huzhou 313000, China; 3 Key Laboratory of System Control and Information Processing, Ministry of Education, Shanghai 200240, China |
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Abstract A multi-hop nondestructive teleportation scheme independent of channel parameters based on Bell pairs is presented, where the coefficients of the quantum channel are unknown to all the communication nodes. With Bell measurement and channel matching technology the unknown channel parameters can be eliminated probabilistically with the help of the intermediate nodes. Then the source node Alice can teleport an unknown state to the remote destination node Bob. In our scheme the teleportation is generalized first to the scenario independent of channel parameters, which makes the requirement of quantum channel reduced. Our scheme still preserves the initial unknown state even if this teleportation fails. Moreover, performance analysis shows that our scheme has a higher communication efficiency.
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Received: 09 April 2021
Revised: 16 June 2021
Accepted manuscript online: 12 July 2021
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PACS:
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03.67.Hk
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(Quantum communication)
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03.67.Pp
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(Quantum error correction and other methods for protection against decoherence)
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Fund: Project supported by the Tang Scholar Project of Soochow University, the National Natural Science Foundation of China (Grant No. 61873162), and the Funds from the Jiangsu Engineering Research Center of Novel Optical Fiber Technology and Communication Network and Suzhou Key Laboratory of Advanced Optical Communication Network Technology. |
Corresponding Authors:
Min Jiang
E-mail: jiangmin08@suda.edu.cn
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Cite this article:
Hua-Yang Li(李华阳), Yu-Zhen Wei(魏玉震), Yi Ding(丁祎), and Min Jiang(姜敏) Channel parameters-independent multi-hop nondestructive teleportation 2022 Chin. Phys. B 31 020302
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