Boosting State Discrimination in Quantum Brownian Motion Channel via Memory-Induced Coherence Preservation
Abstract
Preserving quantum resources in dissipative environments is a fundamental challenge in quantum information processing. While environmental interactions usually degrade quantum resources, we theoretically show that in a Quantum Brownian Motion (QBM) channel, continuous-variable state discrimination can be improved by increasing, rather than minimizing, the initial thermal noise. Specifically, without suppressing the inherent environmental dissipation, when combined with squeezing, this initial noise induces a coherence preservation mechanism driven by the transient non-thermalization of the probe with the bath. This preservation translates into a pronounced reduction in error probabilities for state discrimination between orthogonal squeezing directions. Furthermore, we also show that quadrature homodyne detection achieves near-optimal performance, approaching the Helstrom limit. These results highlight the advantage of exploiting thermal-squeezed states, offering a robust physical architecture for quantum communication in high-temperature environments.
Keywords
Cite
@article{arxiv.2607.15405,
title = {Boosting State Discrimination in Quantum Brownian Motion Channel via Memory-Induced Coherence Preservation},
author = {João C. P. Porto and Pedro R. Dieguez and Carlos H. S. Vieira and Irismar G. da Paz and Giandomenico Palumbo and Lucas S. Marinho},
journal= {arXiv preprint arXiv:2607.15405},
year = {2026}
}