Analytical expression of quantum discord for rank-2 two-qubit states
Zhu, X., Fei, S., Li-Jost, X.
Abstract
Zhu, X., Fei, S., Li-Jost, X.
Abstract
Quantum correlations characterized by quantum entanglement and quantum discord play important roles in many quantum information processing. We study the relations among the entanglement of formation, concurrence, tangle, linear entropy-based classical correlation and von Neumann entropy-based classical correlation . We present analytical formulae of linear entropy-based classical correlation for arbitrary $$d\otimes 2$$ quantum states and von Neumann entropy-based classical correlation for arbitrary $$2\otimes 2$$ rank-2 quantum states. From the von Neumann entropy-based classical correlation, we derive an explicit formula of quantum discord for arbitrary rank-2 two-qubit quantum states.
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Quantum correlations characterized by quantum entanglement and quantum discord play important roles in many quantum information processing. We study the relations among the entanglement of formation, concurrence, tangle, linear entropy-based classical correlation and von Neumann entropy-based classical correlation . We present analytical formulae of linear entropy-based classical correlation for arbitrary $$d\otimes 2$$ quantum states and von Neumann entropy-based classical correlation for arbitrary $$2\otimes 2$$ rank-2 quantum states. From the von Neumann entropy-based classical correlation, we derive an explicit formula of quantum discord for arbitrary rank-2 two-qubit quantum states.
Key concepts: Von Neumann entropy, Quantum discord, Quantum entanglement, Quantum relative entropy, Quantum correlation, Qubit, Joint quantum entropy, Concurrence