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Related Experiment Video

Updated: Mar 8, 2026

Generation and Coherent Control of Pulsed Quantum Frequency Combs
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General Approach to Quantum Channel Impossibility by Local Operations and Classical Communication.

Scott M Cohen1

  • 1Department of Physics, Portland State University, Portland, Oregon 97201, USA.

Physical Review Letters
|January 28, 2017
PubMed
Summary

We present a method to determine if a quantum channel can be implemented using local operations and classical communication (LOCC). This approach uses linear equations and can design protocols when implementation is possible, simplifying quantum information processing analysis.

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Area of Science:

  • Quantum Information Science
  • Quantum Computation
  • Quantum Communication

Background:

  • Implementing quantum channels via local operations and classical communication (LOCC) is a fundamental problem in quantum information science.
  • Determining the implementability of quantum channels is computationally challenging, especially for complex channels or infinite rounds.
  • Existing methods often struggle with channels on the boundary of the LOCC set or require prior knowledge of channel separability.

Purpose of the Study:

  • To develop a general and computationally efficient method for proving the impossibility of implementing quantum channels via LOCC.
  • To provide a constructive approach for designing LOCC protocols when implementation is possible within a finite number of rounds.
  • To investigate the properties of the set of LOCC-implementable quantum channels, including its closure properties.

Main Methods:

  • Formulating the problem of LOCC implementability as solving a set of linear equations.
  • Developing a general framework applicable to any number of rounds, including infinite rounds.
  • Applying the method to specific quantum channel examples to test its efficacy and explore boundary cases.

Main Results:

  • A general method is established to prove LOCC impossibility by solving linear equations.
  • The method enables the design of LOCC protocols for implementable channels in a finite number of rounds.
  • Numerical evidence suggests the set of non-LOCC quantum channels is not closed, with boundary channels existing for 1-round and 3-round implementations.
  • The method does not require prior knowledge of the channel's separability.

Conclusions:

  • The developed method offers a powerful and efficient tool for analyzing quantum channel implementability via LOCC.
  • The findings contribute to a deeper understanding of the boundaries and properties of LOCC-implementable quantum channels.
  • This research simplifies the analysis of quantum channels, making it more accessible computationally than previously thought.