TY - JOUR
T1 - Controlled Quantum Network Coding without Loss of Information
AU - Pan, Xiu Bo
AU - Chen, Xiu Bo
AU - Xu, Gang
AU - Ahmad, Haseeb
AU - Shang, Tao
AU - Li, Zong Peng
AU - Yang, Yi Xian
N1 - Publisher Copyright:
© 2021 Tech Science Press. All rights reserved.
PY - 2021
Y1 - 2021
N2 - Quantum network coding is used to solve the congestion problem in quantum communication, which will promote the transmission efficiency of quantum information and the total throughput of quantum network. We propose a novel controlled quantum network coding without information loss. The effective transmission of quantum states on the butterfly network requires the consent form a third-party controller Charlie. Firstly, two pairs of threeparticle non-maximum entangled states are pre-shared between senders and controller. By adding auxiliary particles and local operations, the senders can predict whether a certain quantum state can be successfully transmittedwithin the butterfly network based on the Z- { |0_ , |1_} basis. Secondly, when transmission fails upon prediction, the quantum statewill not be lost, and it will still be held by the sender. Subsequently, the controller Charlie re-prepares another three-particle non-maximum entangled state to start a new round. When the predicted transmission is successful, the quantum state can be transmitted successfully within the butterfly network. If the receiver wants to receive the effective quantum state, the quantum measurements from Charlie are needed. Thirdly, when the transmission fails, Charlie does not need to integrate the X- {|+_ , |−_} basis to measure its own particles, by which quantum resources are saved. Charlie not only controls the effective transmission of quantum states, but also the usage of classical and quantum channels. Finally, the implementation of the quantum circuits, as well as a flow chart and safety analysis of our scheme, is proposed.
AB - Quantum network coding is used to solve the congestion problem in quantum communication, which will promote the transmission efficiency of quantum information and the total throughput of quantum network. We propose a novel controlled quantum network coding without information loss. The effective transmission of quantum states on the butterfly network requires the consent form a third-party controller Charlie. Firstly, two pairs of threeparticle non-maximum entangled states are pre-shared between senders and controller. By adding auxiliary particles and local operations, the senders can predict whether a certain quantum state can be successfully transmittedwithin the butterfly network based on the Z- { |0_ , |1_} basis. Secondly, when transmission fails upon prediction, the quantum statewill not be lost, and it will still be held by the sender. Subsequently, the controller Charlie re-prepares another three-particle non-maximum entangled state to start a new round. When the predicted transmission is successful, the quantum state can be transmitted successfully within the butterfly network. If the receiver wants to receive the effective quantum state, the quantum measurements from Charlie are needed. Thirdly, when the transmission fails, Charlie does not need to integrate the X- {|+_ , |−_} basis to measure its own particles, by which quantum resources are saved. Charlie not only controls the effective transmission of quantum states, but also the usage of classical and quantum channels. Finally, the implementation of the quantum circuits, as well as a flow chart and safety analysis of our scheme, is proposed.
KW - Controlled quantum network coding
KW - Perfect transmission
KW - Quantum teleportation
KW - Without information loss
UR - https://www.scopus.com/pages/publications/85115907705
U2 - 10.32604/cmc.2021.017087
DO - 10.32604/cmc.2021.017087
M3 - 文章
AN - SCOPUS:85115907705
SN - 1546-2218
VL - 69
SP - 3967
EP - 3979
JO - Computers, Materials and Continua
JF - Computers, Materials and Continua
IS - 3
ER -