Quantum Resource Control for noisy EPR-steering with qubit measurements
Jukka Kiukas, Daniel Burgarth

TL;DR
This paper uses quantum optimal control to enhance EPR-steering resources in noisy qubit systems, addressing decoherence effects and improving quantum key distribution protocols through advanced resource-theoretic methods.
Contribution
It introduces a novel control approach for noisy EPR-steering using resource-theoretic robustness monotones and analytical incompatibility characterization, enabling practical optimization.
Findings
Optimal control improves steering robustness under noise.
Analytical incompatibility expression facilitates efficient optimization.
Numerical demonstrations show advantage over naive control methods.
Abstract
We demonstrate how quantum optimal control can be used to enhance quantum resources for bipartite one-way protocols, specifically EPR-steering with qubit measurements. Steering is relevant for one-sided device-independent key distribution, the realistic implementations of which necessitate the study of noisy scenarios. So far mainly the case of imperfect detection efficiency has been considered; here we look at the effect of dynamical noise responsible for decoherence and dissipation. In order to set up the optimisation, we map the steering problem into the equivalent joint measurability problem, and employ quantum resource-theoretic robustness monotones from that context. The advantage is that incompatibility (hence steerability) with arbitrary pairs of noisy qubit measurements has been completely characterised through an analytical expression, which can be turned into a computable…
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