Entangled and sequential quantum protocols with dephasing.

Phys Rev Lett

Department of Chemistry and Chemical Biology, Harvard University, Cambridge, Massachusetts 02138, USA.

Published: March 2012

AI Article Synopsis

  • Sequences of commuting quantum operators can be made more efficient through the use of entanglement, impacting quantum metrology and circuit complexity.
  • Dephasing quantum maps can also be parallelized, indicating that entangled and sequential protocols perform similarly in terms of fragility and effectiveness under general dephasing noise.
  • The findings are derived using tensor networks and apply across various theories like geometric quantization and topological quantum field theory, enhancing our understanding of entanglement's role in quantum mechanics.

Article Abstract

Sequences of commuting quantum operators can be parallelized using entanglement. This transformation is behind some optimal quantum metrology protocols and recent results on quantum circuit complexity. We show that dephasing quantum maps in arbitrary dimension can also be parallelized. This implies that for general dephasing noise the protocol with entanglement is not more fragile than the corresponding sequential protocol and, conversely, the sequential protocol is not less effective than the entangled one. We derive this result using tensor networks. Furthermore, we only use transformations strictly valid within string diagrams in dagger compact closed categories. Therefore, they apply verbatim to other theories, such as geometric quantization and topological quantum field theory. This clarifies and characterizes to some extent the role of entanglement in general quantum theories.

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Source
http://dx.doi.org/10.1103/PhysRevLett.108.120402DOI Listing

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