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Efficient Backcasting Search for Optical Quantum State Synthesis. | LitMetric

Efficient Backcasting Search for Optical Quantum State Synthesis.

Phys Rev Lett

Department of Applied Physics, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

Published: June 2022

AI Article Synopsis

  • - Non-Gaussian states are crucial for advancing optical quantum technologies, and the Optical Quantum State Synthesizer (OQSS) is a promising method for their preparation using Gaussian inputs and linear optics.
  • - A major challenge is the complexity of simulating the state preparation on classical computers, making it tough to generate essential non-Gaussian states for quantum processing.
  • - The authors propose a backcasting approach to simplify the OQSS design, simulating it layer by layer from the final output back to the beginning, which can also limit the photon detection requirements to a maximum of 2 photons.

Article Abstract

Non-Gaussian states are essential for many optical quantum technologies. The so-called optical quantum state synthesizer (OQSS), consisting of Gaussian input states, linear optics, and photon-number resolving detectors, is a promising method for non-Gaussian state preparation. However, an inevitable and crucial problem is the complexity of the numerical simulation of the state preparation on a classical computer. This problem makes it very challenging to generate important non-Gaussian states required for advanced quantum information processing. Thus, an efficient method to design OQSS circuits is highly desirable. To circumvent the problem, we offer a scheme employing a backcasting approach, where the circuit of OQSS is divided into some sublayers, and we simulate the OQSS backwards from final to first layers. Moreover, our results show that the detected photon number by each detector is at most 2, which can significantly reduce the requirements for the photon-number resolving detector. By virtue of the potential for the preparation of a wide variety of non-Gaussian states, the proposed OQSS can be a key ingredient in general optical quantum information processing.

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Source
http://dx.doi.org/10.1103/PhysRevLett.128.240503DOI Listing

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