arXiv · 1906.11807
No Disturbance Without Uncertainty as a Physical Principle
Abstract
Finding physical principles lying behind quantum mechanics is essential to understand various quantum features, e.g., the quantum correlations, in a theory-independent manner. Here we propose such a principle, namely, no disturbance without uncertainty, stating that the disturbance caused by a measurement to a subsequent incompatible measurement is no larger than the uncertainty of the first measurement, equipped with suitable theory-independent measures for disturbance and uncertainty. When applied to local systems in a multipartite scenario, our principle imposes such a strong constraint on non-signaling correlations that quantum correlations can be recovered in many cases: i. it accounts for the Tsirelsons bound; ii. it provides the so far tightest boundary for a family of the noisy super-nonlocal box with 3 parameters, and iii. it rules out an almost quantum correlation from quantum correlations by which all the previous principles fail, as well as the celebrated quantum criterion due to Navascues, Pironio, and Acin. Our results pave the way to understand nonlocality exhibited in quantum correlations from local principles.
Explore related subjects
Keep this discovery
Liang-Liang Sun, Xiang Zhou, Sixia Yu. 2019-06-27. No Disturbance Without Uncertainty as a Physical Principle. https://arxiv.org/abs/1906.11807
Cite the original work for its findings. Save a collection to share your selection of sources.