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Computing quantum discord is NP-complete
by
Huang, Yichen
in
Algorithms
/ channel capacity
/ Complexity
/ computational complexity
/ Correlation analysis
/ Data processing
/ Distillation
/ entanglement measures
/ Entropy of formation
/ Hilbert space
/ Optimization
/ Physics
/ Quantum computing
/ quantum discord
/ Quantum entanglement
/ quantum mechanics
/ Quantum phenomena
/ Quantum teleportation
/ Quantum theory
/ Regularization
2014
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Computing quantum discord is NP-complete
by
Huang, Yichen
in
Algorithms
/ channel capacity
/ Complexity
/ computational complexity
/ Correlation analysis
/ Data processing
/ Distillation
/ entanglement measures
/ Entropy of formation
/ Hilbert space
/ Optimization
/ Physics
/ Quantum computing
/ quantum discord
/ Quantum entanglement
/ quantum mechanics
/ Quantum phenomena
/ Quantum teleportation
/ Quantum theory
/ Regularization
2014
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Do you wish to request the book?
Computing quantum discord is NP-complete
by
Huang, Yichen
in
Algorithms
/ channel capacity
/ Complexity
/ computational complexity
/ Correlation analysis
/ Data processing
/ Distillation
/ entanglement measures
/ Entropy of formation
/ Hilbert space
/ Optimization
/ Physics
/ Quantum computing
/ quantum discord
/ Quantum entanglement
/ quantum mechanics
/ Quantum phenomena
/ Quantum teleportation
/ Quantum theory
/ Regularization
2014
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Journal Article
Computing quantum discord is NP-complete
2014
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Overview
We study the computational complexity of quantum discord (a measure of quantum correlation beyond entanglement), and prove that computing quantum discord is NP-complete. Therefore, quantum discord is computationally intractable: the running time of any algorithm for computing quantum discord is believed to grow exponentially with the dimension of the Hilbert space so that computing quantum discord in a quantum system of moderate size is not possible in practice. As by-products, some entanglement measures (namely entanglement cost, entanglement of formation, relative entropy of entanglement, squashed entanglement, classical squashed entanglement, conditional entanglement of mutual information, and broadcast regularization of mutual information) and constrained Holevo capacity are NP-hard/NP-complete to compute. These complexity-theoretic results are directly applicable in common randomness distillation, quantum state merging, entanglement distillation, superdense coding, and quantum teleportation; they may offer significant insights into quantum information processing. Moreover, we prove the NP-completeness of two typical problems: linear optimization over classical states and detecting classical states in a convex set, providing evidence that working with classical states is generically computationally intractable.
Publisher
IOP Publishing
Subject
/ Physics
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