ExplorerQuantum ComputingQuantum Physics
Research PaperResearchia:202607.10019

Typicality of Steering for Two-qubit States

Gerard Anglès Munné

Abstract

Phenomena that slip beyond the grasp of our classical intuition reveal uniquely quantum effects that deepen our understanding of the physical world and enable advances in information processing, particularly in quantum communication and computation. One such phenomenon is quantum steering, whereby measurements performed by one party influence the conditional states of another when the two share an entangled quantum system. If the observed correlations cannot be explained by a local hidden state ...

Submitted: July 10, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Phenomena that slip beyond the grasp of our classical intuition reveal uniquely quantum effects that deepen our understanding of the physical world and enable advances in information processing, particularly in quantum communication and computation. One such phenomenon is quantum steering, whereby measurements performed by one party influence the conditional states of another when the two share an entangled quantum system. If the observed correlations cannot be explained by a local hidden state model, the state is said to be steerable. In this work, we investigate the typicality of this behavior: given a generic two-qubit state and mm Haar-random projective measurements, what is the probability of observing steering? We derive analytical expressions for the steering probability PS\mathcal{P}_S of Werner states in two- and three-setting scenarios, the latter restricted to coplanar projective measurements on the Bloch sphere. For larger numbers of settings and various random states ensembles, we perform numerical analyses showing that PS\mathcal{P}_S increases systematically with the number of measurements and substantially exceeds the corresponding probabilities associated with Bell nonlocality. Our results demonstrate that random states with minimal environmental coupling exhibit a high probability of steering for finite mm and approach genuine typicality, PS=100%\mathcal{P}_S=100\%, as the number of settings increases. We provide a detailed characterization of PS\mathcal{P}_S across different state ensembles and specific families, including Bell-diagonal and Werner states, identifying those with the greatest non-classical potential and highlighting their relevance for protocols in which steering serves as a key resource.


Source: arXiv:2607.08762v1 - http://arxiv.org/abs/2607.08762v1 PDF: https://arxiv.org/pdf/2607.08762v1 Original Link: http://arxiv.org/abs/2607.08762v1

Please sign in to join the discussion.

No comments yet. Be the first to share your thoughts!

Access Paper
View Source PDF
Submission Info
Date:
Jul 10, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
0
Bookmark