arXiv · 2311.09572
A Meta Logarithmic-Sobolev Inequality for Phase-Covariant Gaussian Channels
Abstract
We introduce a meta logarithmic-Sobolev (log-Sobolev) inequality for the Lindbladian of all single-mode phase-covariant Gaussian channels of bosonic quantum systems, and prove that this inequality is saturated by thermal states. We show that our inequality provides a general framework to derive information theoretic results regarding phase-covariant Gaussian channels. Specifically, by using the optimality of thermal states, we explicitly compute the optimal constant $\alpha_p$, for $1\leq p\leq 2$, of the $p$-log-Sobolev inequality associated to the quantum Ornstein-Uhlenbeck semigroup. Prior to our work, the optimal constant was only determined for $p=1$. Our meta log-Sobolev inequality also enables us to provide an alternative proof for the constrained minimum output entropy conjecture in the single-mode case. Specifically, we show that for any single-mode phase-covariant Gaussian channel $\Phi$, the minimum of the von Neumann entropy $S\big(\Phi(\rho)\big)$ over all single-mode states $\rho$ with a given lower bound on $S(\rho)$, is achieved at a thermal state.
Explore related subjects
Keep this discovery
Salman Beigi, Saleh Rahimi-Keshari. 2023-11-16. A Meta Logarithmic-Sobolev Inequality for Phase-Covariant Gaussian Channels. https://doi.org/10.1007/s00023-024-01487-2
Cite the original work for its findings. Save a collection to share your selection of sources.