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Quantum Simulation
Smallest state spaces for which bipartite entangled quantum states are separable
arXiv
Authors: Hussain Anwar, Sania Jevtic, Oliver Rudolph, Shashank Virmani
Year
2014
Paper ID
46334
Status
Preprint
Abstract Read
~2 min
Abstract Words
164
Citations
N/A
Abstract
According to usual definitions, entangled states cannot be given a separable decomposition in terms of products of local density operators. If we relax the requirement that the local density operators be positive, then an entangled quantum state may admit a separable decomposition in terms of more general sets of single-system operators. This form of separability can be used to construct classical models and simulation methods when only restricted set of measurements are available. With such motivations in mind, we ask what are the smallest such sets of local operators such that a pure bipartite entangled quantum state becomes separable? We find that in the case of maximally entangled states there are many inequivalent solutions, including for example the sets of phase point operators that arise in the study of discrete Wigner functions. We therefore provide a new way of interpreting these operators, and more generally, provide an alternative method for constructing local hidden variable models for entangled quantum states under subsets of quantum measurements.
Why This Paper Matters
- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
- It adds a 2014 reference point for readers tracking recent quantum research.
- According to usual definitions, entangled states cannot be given a separable decomposition in terms of products of local density operators.
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