4.6 Article

Quantum deleting and cloning in a pseudo-unitary system

期刊

FRONTIERS OF PHYSICS
卷 16, 期 5, 页码 -

出版社

HIGHER EDUCATION PRESS
DOI: 10.1007/s11467-021-1063-z

关键词

quantum deleting; quantum cloning; pseudo-unitary

资金

  1. National Natural Science Foundation of China [11734015, 11474049, 11674056]
  2. K. C. Wong Magna Fund in Ningbo University
  3. Research Grants Council of Hong Kong (RGC, Hong Kong) [538213]
  4. National Youth Thousand Talents Program [KJ2030000001]
  5. USTC start-up funding [KY2030000053]

向作者/读者索取更多资源

This study investigates the quantum deleting and cloning in a pseudo-unitary system, showing the possibility of deleting and cloning a class of two different and nonorthogonal states. It also discusses state discrimination, which is strongly related to the quantum no-cloning theorem. The simulations using pseudo-unitary operators in conventional quantum mechanics with post-selection show success probabilities of deleting and cloning less than unity, in line with the quantum no-deleting and no-cloning theorems.
In conventional quantum mechanics, quantum no-deleting and no-cloning theorems indicate that two different and nonorthogonal states cannot be perfectly and deterministically deleted and cloned, respectively. Here, we investigate the quantum deleting and cloning in a pseudo-unitary system. We first present a pseudo-Hermitian Hamiltonian with real eigenvalues in a two-qubit system. By using the pseudo-unitary operators generated from this pseudo-Hermitian Hamiltonian, we show that it is possible to delete and clone a class of two different and nonorthogonal states, and it can be generalized to arbitrary two different and nonorthogonal pure qubit states. Furthermore, state discrimination, which is strongly related to quantum no-cloning theorem, is also discussed. Last but not least, we simulate the pseudo-unitary operators in conventional quantum mechanics with post-selection, and obtain the success probability of simulations. Pseudo-unitary operators are implemented with a limited efficiency due to the post-selections. Thus, the success probabilities of deleting and cloning in the simulation by conventional quantum mechanics are less than unity, which maintain the quantum no-deleting and no-cloning theorems.

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