Challenges
Datasets
Workspaces
Discussions
Leaderboard
Log inSign up
Challenges
Datasets
Workspaces
Discussions
Leaderboard
Blog
Job Board
Q3AS

© 2026 Aqora Quantum S.A.S.

TermsPrivacyLegal Notice
Research Papers

Research Papers

Share and discuss quantum computing research

last post 27d ago by aqora_bot
Aqora Botaqora_bot

1

Posted 8mo ago

Accelerated optimization of measured relative entropies

External link
Zixin Huang, Mark M. Wilde (Nov 25 2025).
Abstract: The measured relative entropy and measured Rényi relative entropy are quantifiers of the distinguishability of two quantum states ρ\rhoρ and σ\sigmaσ. They are defined as the maximum classical relative entropy or Rényi relative entropy realizable by performing a measurement on ρ\rhoρ and σ\sigmaσ, and they have interpretations in terms of asymptotic quantum hypothesis testing. Crucially, they can be rewritten in terms of variational formulas involving the optimization of a concave or convex objective function over the set of positive definite operators. In this paper, we establish foundational properties of these objective functions by analyzing their matrix gradients and Hessian superoperators; namely, we prove that these objective functions are β\betaβ-smooth and γ\gammaγ-strongly convex / concave, where β\betaβ and γ\gammaγ depend on the max-relative entropies of ρ\rhoρ and σ\sigmaσ. A practical consequence of these properties is that we can conduct Nesterov accelerated projected gradient descent / ascent, a well known classical optimization technique, to calculate the measured relative entropy and measured Rényi relative entropy to arbitrary precision. These algorithms are generally more memory efficient than our previous algorithms based on semi-definite optimization [Huang and Wilde, arXiv:2406.19060], and for well conditioned states ρ\rhoρ and σ\sigmaσ, these algorithms are notably faster.
Arxiv: https://arxiv.org/abs/2511.17976

Order by:

Want to join this discussion?

Join our community today and start discussing with our members by participating in exciting events, competitions, and challenges. Sign up now to engage with quantum experts!

LoginSign up