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Bosonic Continuous Variable Quantum Computing

Photon-Conditioned Squeezed States for Directional Displacement Response in Continuous-Variable Photonics

arXiv
Authors: Boris Kiefer, Olivier Pfister

Year

2026

Paper ID

68210

Status

Preprint

Abstract Read

~2 min

Abstract Words

158

Citations

0

Abstract

Squeezed Fock states, photon-subtracted squeezed states, and optical cat states are established non-Gaussian resources in continuous-variable quantum optics. Here we compare these known state families from a task-oriented perspective: matched mean photon number, scalar Wigner negativity, and directional displacement-fidelity response. Starting from squeezed vacuum, single-photon subtraction prepares a state proportional to S(r,θ)ket{1}, while two-photon subtraction prepares an even-parity squeezed Fock superposition rather than a pure S(r,θ)ket{2}. We benchmark photon-conditioned squeezed states against Fock and coherent-cat references using the integrated Wigner negativity δ, the energy-normalized metric δ/langle nrangle, and fidelity-threshold displacement radii RF(φ). Cat benchmarks remain strong scalar Wigner-negativity resources, whereas photon-conditioned squeezed states provide an origin-centered alternative with tunable anisotropic displacement response. In particular, the two-photon-subtracted squeezed state shows favorable displacement-fidelity radii over selected quadrature directions at matched langle nrangle. These results identify a regime relevant to homodyne-aligned continuous-variable control and anisotropic displacement-noise mitigation, with directional sensing as a natural dual application.

Why This Paper Matters

  • This paper contributes to the Bosonic & Continuous-Variable Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Squeezed Fock states, photon-subtracted squeezed states, and optical cat states are established non-Gaussian resources in continuous-variable quantum optics.

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