Simultaneous Detection of High-Dimensional Entanglement for Two Unknown Quantum States
Abstract
The state overlap, quantified via , is a metric widely used to assess the closeness between two quantum states and . Although global state overlap alone does not directly capture entanglement properties, we uncover that incorporating local state overlaps provide profound insights into the entanglement characteristics of quantum states. To be precise, the ratio of global to local state overlaps provides a lower bound on the Schmidt number, which is usually used for quantifying high-dimensional entanglement. Unlike conventional methods for detecting entanglement, the approach here can simultaneously reveal entanglement information for two unknown quantum states. Moreover, state overlap can be efficiently determined through local randomized measurement methods, which ensures the experimental feasibility of our approach. In a special case, our criterion reduces to an entanglement criterion that is more powerful than the two criteria used most in experiment--the purity criterion and the fidelity-based criterion and also outperform the -PPT method in specific instances. Our findings highlight a promising direction for advancements in entanglement detection experiments.
Cite
@article{arxiv.2603.20772,
title = {Simultaneous Detection of High-Dimensional Entanglement for Two Unknown Quantum States},
author = {Mao-Sheng Li and Chang-Yue Zhang and Zheng Zheng and Zhihua Chen and Zhen-Peng Xu and Zhihao Ma and Yan-Ling Wang and Shao-Ming Fei and Zhu-Jun Zheng and Otfried Gühne},
journal= {arXiv preprint arXiv:2603.20772},
year = {2026}
}
Comments
15 pages , 4 figures, comments are welcome!